Yet Another Math Programming Consultant

Saturday, January 11, 2020

MIP vs greedy search

Problem

Assume we have $N$ points (with $N$ even). Find $N/2$ pairs of points, such that the sum of the lengths of the line segments based on these pairs, is minimized. This looks like an assignment problem where we do not know in advance the partition of the nodes in two equally sized sets.

A picture is probably better than my arduous description:

Optimal MIP solution: sum of the lengths is minimized

Let's try a MIP model.

MIP Formulation

The first thing to do is to calculate a distance matrix between points $i$ and $j$. As this matrix is symmetric, we only need to store the upper-triangular part (with $i\lt j$). That means we only need to store a little bit less than half the number of entries: \[\mathit{ndist}=\frac{1}{2}N(N-1)\]

If we use as variables \[x_{i,j} = \begin{cases} 1 & \text{if nodes $i$ and $j$ are connected}\\ 0 & \text{otherwise}\end{cases}\] we need to think a bit about symmetry. If nodes 1 and 2 are connected, then we only want to see $x_{1,2}=1$ while ignoring $x_{2,1}=1$. So again, we only consider the variable $x_{i,j}$ when $i \lt j$. Again, this saves about half the number of variables we otherwise would use.

The model can look like:

MIP Model
\[\begin{align}\min& \sum_{i,j\|i \lt j} \color{darkblue}d_{i,j} \color{darkred}x_{i,j}\\ & \sum_{j\|j \gt i} \color{darkred}x_{i,j} + \sum_{j\|j \lt i} \color{darkred}x_{j,i} = 1 && \forall i\\ & \color{darkred}x_{i,j} \in \{0,1\} \end{align} \]

The above picture is the optimal solution from this MIP model.

The constraint looks a bit strange. It basically says: every node $i$ is either a start- or an end-point of a single segment. Somewhat surprising, at first sight, is that this is enough to characterize our graph.

Sidenote

We can see in a picture how the constraint for $i=4$ is formed:

The blue zone must contain exactly one 1. If we would pick $j=7$, i.e. $x_{4,7}=1$, the picture becomes:

It turns out this MIP model is fairly easy to solve. The example problem with $N=50$ points solves in a matter of seconds. For $N=500$ points, we get a large MIP with 124,750 binary variables and 500 constraints. Cplex solves this model quickly to optimality in 90 seconds on my laptop.

Greedy heuristic

An obvious greedy heuristic is as follows:

Find the pair with the shortest distance \[\min_{i \lt j} d_{i,j}\] and record this segment.
Remove the two nodes that belong to this segment from the problem.
If there are still nodes left, go to step 1.

This heuristic is exceedingly simple to implement. Some results for our 50 point example:

MIP vs Greedy
Points	Optimal MIP Objective	Greedy Objective
50	241.2667	339.236

The greedy algorithm is really astonishingly bad. The animation below shows why: with a simple greedy algorithm we are doing very good initially, but pay the price in the end.

Greedy algorithm in action

The picture on the left shows how my greedy algorithm selects shortest possible segment. The last few ones are really long. The right picture shows the lengths of the segment compared to the ones for the optimal MIP solution. The blue bars are formed by sorting the MIP solution. Until just before the end, things look honky-dory for the greedy algorithm. But the last few segments are really bad.

We can distinguish three areas:

For the first, very small segments, the MIP solution and the greedy algorithm pick the same pairs. No difference.
In the middle, the greedy algorithm is doing a little bit better: it picks shorter segments than the MIP solver.
But at the end, the greedy algorithm totally collapses: it has to choose very long segments.

References

Finding minimum total length of line segments to connect 2N points, https://stackoverflow.com/questions/59684772/finding-minimum-total-length-of-line-segments-to-connect-2n-points

Thursday, January 9, 2020

Preferences in assignments

Problem

The problem is as follows [1]:

We have $N$ persons.
They have to be assigned to $M$ groups.
Each group has a certain, given, size.
Each person has certain preferences to be in the same group with some other persons. For this, each person provides a list of persons (s)he would like or dislike to be in the same group with.
Design an assignment plan that takes these preferences into account.

If we don't allow empty spots in groups, we have the following condition on the data: \[\sum_g \mathit{size}_g = N\]

Data

The data is provided as a fancy spreadsheet:

We see we have $N=28$ persons.

The matrix with preferences has three different colored symbols:

Yellow exclamation mark for 0
Green tick mark for +1
and a red x for -1

The matrix is not symmetric. E.g. there are some columns with all zero entries. Such rows do not exist. We need to read the matrix row wise: each row represents the preferences of a person. It is noted that the diagonal has all zeros, which is what I would expect.

For the problem, I want to have the total group capacity equal to $N=28$, so I consider:

4 groups of 6
1 group of 4

High-level Model

A first attempt to model this problem is as follows. We use: \[x_{p,g} = \begin{cases} 1 & \text{if person $p$ is assigned to group $g$} \\ 0 & \text{otherwise}\end{cases} \] as our decision variable. The objective is to maximize the total number of preferences $+1$ or $-1$ that are honored. With this we can write:

Quadratic Model
\[\begin{align}\max & \sum_{p_1,p_2,g} \color{darkblue}{\mathit{Pref}}_{p_1,p_2} \color{darkred} x_{p_1,g} \color{darkred} x_{p_2,g} \\ & \sum_g \color{darkred}x_{p,g}=1 & \forall p \\ & \sum_p \color{darkred}x_{p,g} = \color{darkblue}{\mathit{Size}}_{g} &\forall g \\ & \color{darkred} x_{p,g} \in \{0,1\}\end{align}\]

We can feed this into an MIQP solver. The solution looks like:

----     80 PARAMETER solution  using MIQP model

               group1      group2      group3      group4      group5

aimee               1
amber-la                                                1
amber-le                                                            1
andrina             1
catelyn-t                                   1
charlie                                                 1
charlotte                                   1
cory                            1
daniel                          1
ellie               1
ellis               1
eve                                         1
grace-c                                                 1
grace-g                                                 1
holly                                                   1
jack                            1
jade                                                                1
james                           1
kadie                                       1
kieran                                                              1
kristiana                                   1
lily                                                                1
luke                            1
naz                 1
nibah                                       1
niko                            1
wiki                1
zeina                                                   1
COUNT               6           6           6           6           4

Linearization

We can linearize this model in different ways:

Let the solver reformulate. Cplex, for instance, will automatically reformulate this problem and will actually solve this as a linear MIP.
DIY. We can linearize the products: \[y_{p_1,p_2,g} = x_{p_1,g}\cdot x_{p_2,g}\] using \[\begin{align} & y_{p_1,p_2,g} \le x_{p_1,g} \\& y_{p_1,p_2,g} \le x_{p_2,g} \\ & y_{p_1,p_2,g} \ge x_{p_1,g}+x_{p_2,g}-1 \end{align} \] We can save a bit by only using $y_{p_1,p_2,g}$ for $p_1 \le p_2$. This requires a bit of careful modeling. Let's give this a try.

Linear Model I
\[\begin{align}\max & \sum_{p_1\lt p_2,g} (\color{darkblue}{\mathit{Pref}}_{p_1,p_2}+\color{darkblue}{\mathit{Pref}}_{p_2,p_1}) \color{darkred} y_{p_1,p_2,g} \\ & \sum_g \color{darkred}x_{p,g}=1 && \forall p \\ & \sum_p \color{darkred}x_{p,g} = \color{darkblue}{\mathit{Size}}_{g} && \forall g \\ & \color{darkred}y_{p_1,p_2,g} \le \color{darkred}x_{p_1,g} && \forall p_1\lt p_2, g \\ & \color{darkred}y_{p_1,p_2,g} \le \color{darkred}x_{p_2,g} && \forall p_1\lt p_2, g \\ &\color{darkred}y_{p_1,p_2,g} \ge \color{darkred}x_{p_1,g}+\color{darkred}x_{p_2,g} -1&& \forall p_1\lt p_2, g\\ & \color{darkred} x_{p,g} \in \{0,1\} \\&\color{darkred}y_{p_1,p_2,g} \in [0,1] && \forall p_1\lt p_2, g \end{align}\]

Linear Model I

There is one extra optimization, we can do. If the objective coefficient is positive, we can drop the constraint $y_{p_1,p_2,g} \ge x_{p_1,g}+x_{p_2,g}-1$. Similarly, if the objective coefficient is negative, we can drop the constraints $y_{p_1,p_2,g} \le x_{p_1,g}$ and $y_{p_1,p_2,g} \le x_{p_1,g}$. This leads to:

Linear Model II
\[\begin{align}\max & \sum_{p_1\lt p_2,g} (\color{darkblue}{\mathit{Pref}}_{p_1,p_2}+\color{darkblue}{\mathit{Pref}}_{p_2,p_1}) \color{darkred} y_{p_1,p_2,g} \\ & \sum_g \color{darkred}x_{p,g}=1 && \forall p \\ & \sum_p \color{darkred}x_{p,g} = \color{darkblue}{\mathit{Size}}_{g} && \forall g \\ & \color{darkred}y_{p_1,p_2,g} \le \color{darkred}x_{p_1,g} && \forall p_1, p_2, g \| p_1\lt p_2, \color{darkblue}{\mathit{Pref}}_{p_1,p_2}+\color{darkblue}{\mathit{Pref}}_{p_2,p_1} \gt 0 \\ & \color{darkred}y_{p_1,p_2,g} \le \color{darkred}x_{p_2,g} && \forall p_1, p_2, g \| p_1\lt p_2, \color{darkblue}{\mathit{Pref}}_{p_1,p_2}+\color{darkblue}{\mathit{Pref}}_{p_2,p_1} \gt 0\\ &\color{darkred}y_{p_1,p_2,g} \ge \color{darkred}x_{p_1,g}+\color{darkred}x_{p_2,g} -1&& \forall p_1,p_2,g \| p_1\lt p_2, \color{darkblue}{\mathit{Pref}}_{p_1,p_2}+\color{darkblue}{\mathit{Pref}}_{p_2,p_1} \lt 0\\ & \color{darkred} x_{p,g} \in \{0,1\} \\&\color{darkred}y_{p_1,p_2,g} \in [0,1] && \forall p_1\lt p_2, g \end{align}\]

Linear Model II

\[\begin{align}\max & \sum_{p_1\lt p_2,g} (\color{darkblue}{\mathit{Pref}}_{p_1,p_2}+\color{darkblue}{\mathit{Pref}}_{p_2,p_1}) \color{darkred} y_{p_1,p_2,g} \\ & \sum_g \color{darkred}x_{p,g}=1 && \forall p \\ & \sum_p \color{darkred}x_{p,g} = \color{darkblue}{\mathit{Size}}_{g} && \forall g \\ & \color{darkred}y_{p_1,p_2,g} \le \color{darkred}x_{p_1,g} && \forall p_1, p_2, g | p_1\lt p_2, \color{darkblue}{\mathit{Pref}}_{p_1,p_2}+\color{darkblue}{\mathit{Pref}}_{p_2,p_1} \gt 0 \\ & \color{darkred}y_{p_1,p_2,g} \le \color{darkred}x_{p_2,g} && \forall p_1, p_2, g | p_1\lt p_2, \color{darkblue}{\mathit{Pref}}_{p_1,p_2}+\color{darkblue}{\mathit{Pref}}_{p_2,p_1} \gt 0\\ &\color{darkred}y_{p_1,p_2,g} \ge \color{darkred}x_{p_1,g}+\color{darkred}x_{p_2,g} -1&& \forall p_1,p_2,g | p_1\lt p_2, \color{darkblue}{\mathit{Pref}}_{p_1,p_2}+\color{darkblue}{\mathit{Pref}}_{p_2,p_1} \lt 0\\ & \color{darkred} x_{p,g} \in \{0,1\} \\&\color{darkred}y_{p_1,p_2,g} \in [0,1] && \forall p_1\lt p_2, g \end{align}\]

Some computational results:

model	MIQP	MIP I	MIP II
objective	84	84	84
iterations	41841	67026	40262
nodes	822	308	594
time (seconds)	6	15	6

Looks like MIP II is closer to what Cplex is doing.

Equality

In this model we optimize the sum of the achieved preferences for all persons. This may actually hurt some individuals. Let's look at the number of +1 and -1 preferences in the data and how many were honored in the solution:

----     96 PARAMETER count  preferences stated and achieved

             +1 prefs    -1 prefs  +/-1 prefs       +1 ok       -1 ok     +/-1 ok

aimee               9           3          12           4           3           7
amber-la            3           2           5           3           2           5
amber-le            2           6           8           1           6           7
andrina             5                       5           4                       4
catelyn-t           5                       5           4                       4
charlie             6           4          10                       4           4
charlotte           1                       1           1                       1
cory                4           4           8           4           4           8
daniel              4           3           7           4           3           7
ellie               6                       6           4                       4
ellis              11           1          12           3           1           4
eve                 7                       7           4                       4
grace-c             2                       2           2                       2
grace-g             4           2           6           4           2           6
holly               3           2           5           3           2           5
jack                3           8          11           3           7          10
jade                1           6           7           1           6           7
james               6           4          10           5           4           9
kadie               6           1           7           4           1           5
kieran                          3           3                       2           2
kristiana           4           2           6           4           2           6
lily                2           7           9                       7           7
luke                5           3           8           5           3           8
naz                 6           2           8           4           2           6
nibah               6                       6           4                       4
niko                4           4           8           4           4           8
wiki                9                       9           4                       4
zeina               3           2           5           3           2           5
sum               127          69         196          86          67         153

The left three columns summarize the input data. The last three columns is what has materialized in the solution. There is some inequality here. E.g. Charlie gets only 4 of his 10 wishes, but Jack gets 10 of his 11 preferences obeyed. It would be interesting if we can find a more equitable solution that still has a good overall performance.

Looking at the above table we can see that 86 of 127 +1 preferences were taken care of (68%) while 67 of 69 -1 preferences were obeyed (97%). There are more seats not at the table than at the table, so that asymmetry makes sense.

Notes:

the objective value (84) can be recovered from: \[86 - (69-67) = 84\]
to increase our objective, we can increase the size of the groups (and having fewer groups). For instance if we use groups of sizes 8,8,6,6, I achieve an optimal objective of 99.

A possible quality measure for each person is: \[\frac{\text{Number of preferences honored}}{\text{Number of preferences specified}}\] If we look at this, we see that ellis and charlie are doing poorly with 33% and 40%. To help prevent these bad cases, we can require that at least 50% (say) of preferences are met. For this data that would decrease the objective from 84 to 83. Actually this 50% is the best we can do.

References

Algorithms for optimal student seating arrangements, https://stackoverflow.com/questions/59599718/algorithms-for-optimal-student-seating-arrangements

Saturday, January 4, 2020

Small Blending Problem in PuLP

In [1] a small blending problem is proposed.

There are different raw steel materials that have to be mixed (blended) into a final material that has certain specifications. In this case the specifications are limits on the elements Carbon (C), Copper (Cu) and Manganese (Mn). We assume things blend linearly.

Blending is a traditional linear programming application, and models are found in many text books.

The problem is small so let's try PuLP here.

I'll try to write a bit about indexing using strings (instead of integers), and compare PuLP with CVXPY and GAMS. As the model is small, I'll also add some data manipulation (using data frames) and some simple reporting (also using data frames). I use string indexing in Pulp (with GAMS this is standard). Of course CVXPY is very different: it is matrix based. So there things are position dependent. The idea it to extract data from the data frame in such a way that positions are predictable.

Problem data

The data for the problem is as follows:

Demand: 5000 Kg

Specification of final material:

    Element      %Minimum %Max   
    Carbon       2         3     
    Copper       0.4       0.6   
    Manganese    1.2       1.65  


Raw material inventory:

Alloy          C%   Cu%   Mn%     Stocks kg Price € / kg
Iron alloy     2.50 0.00  1.30    4000      1.20
Iron alloy     3.00 0.00  0.80    3000      1.50
Iron alloy     0.00 0.30  0.00    6000      0.90
Copper alloy   0.00 90.00 0.00    5000      1.30
Copper alloy   0.00 96.00 4.00    2000      1.45
Aluminum alloy 0.00 0.40  1.20    3000      1.20
Aluminum alloy 0.00 0.60  0.00   2,500      1.00

Mathematical Model

The basic model is:

Blending Model
\[\begin{align}\min & \sum_i \color{darkblue}{\mathit{Cost}}_i\cdot \color{darkred}{\mathit{Use}}_i\\ & \color{darkblue}{\mathit{Min}}_j \le \frac{\displaystyle\sum_i \color{darkblue}{\mathit{Element}}_{i,j}\cdot \color{darkred}{\mathit{Use}}_i}{\displaystyle \sum_i \color{darkred}{\mathit{Use}}_i} \le \color{darkblue}{\mathit{Max}}_j \\ & \sum_i \color{darkred}{\mathit{Use}}_i = \color{darkblue}{\mathit{Demand}} \\ & 0 \le \color{darkred}{\mathit{Use}}_i \le \color{darkblue}{\mathit{Available}}_i \end{align} \]

Blending Model

\[\begin{align}\min & \sum_i \color{darkblue}{\mathit{Cost}}_i\cdot \color{darkred}{\mathit{Use}}_i\\ & \color{darkblue}{\mathit{Min}}_j \le \frac{\displaystyle\sum_i \color{darkblue}{\mathit{Element}}_{i,j}\cdot \color{darkred}{\mathit{Use}}_i}{\displaystyle \sum_i \color{darkred}{\mathit{Use}}_i} \le \color{darkblue}{\mathit{Max}}_j \\ & \sum_i \color{darkred}{\mathit{Use}}_i = \color{darkblue}{\mathit{Demand}} \\ & 0 \le \color{darkred}{\mathit{Use}}_i \le \color{darkblue}{\mathit{Available}}_i \end{align} \]

Here we use: \[\begin{cases} i & \text{Types of raw material in stock}\\ j & \text{Element with limits}\\ {\mathit{Cost}}_i & \text{Unit cost of raw material} \\ {\mathit{Min}}_j, {\mathit{Max}}_j & \text{Limits on element content in final product} \\ {\mathit{Element}}_{i,j} & \text{Content of elements in raw material}\\ {\mathit{Demand}} & \text{Demand for final product}\\ {\mathit{Available}}_i & \text{Availability of raw material} \\ {\mathit{Use}}_i & \text{Decision variable: how much raw material to use} \end{cases}\] The blending constraint is nonlinear: we divide by the total weight of the final product to calculate the percentages. We can linearize this fraction in two ways:

multiply all sides by $\sum_i \mathit{Use}_i$. This leads to \[\mathit{Min}_j \cdot\sum_i \mathit{Use}_i \le \sum_i \mathit{Element}_{i,j}\cdot\mathit{Use}_i \le \mathit{Max}_j \sum_i \mathit{Use}_i\] This first reformulation is especially useful when the total final product is not constant. Note that this formulation is sometimes difficult to recognize when rewritten as something like: \[\begin{cases} \displaystyle \sum_i (\mathit{Element}_{i,j}-\mathit{Min}_j )\mathit{Use}_i \ge 0 \>\>\forall j \\ \displaystyle \sum_i (\mathit{Max}_j - \mathit{Element}_{i,j})\mathit{Use}_i \ge 0 \>\>\forall j \end{cases}\]
In our case we know that $\sum_i \mathit{Use}_i$ is constant: it is always equal to $\mathit{Demand}$. I.e. \[ \mathit{Min}_j \le \frac{1}{\mathit{Demand}} \sum_i \mathit{Element}_{i,j}\cdot\mathit{Use}_i \le \mathit{Max}_j\]

We often need to split sandwich equations into two simple inequalities. That often leads to duplicate expressions: \[\begin{cases} \displaystyle \frac{1}{\mathit{Demand}}\sum_i \mathit{Element}_{i,j}\cdot\mathit{Use}_i \ge \mathit{Min}_j \>\>\forall j \\ \displaystyle \frac{1}{\mathit{Demand}}\sum_i \mathit{Element}_{i,j} \cdot\mathit{Use}_i \le \mathit{Max}_j \>\>\forall j \end{cases}\] For small problems this is not an issue. For larger problems, I prefer to introduce extra variables that prevents these duplicate expressions. We end up with the following linear programming formulation:

Linear Programming Formulation
\[\begin{align}\min & \sum_i \color{darkblue}{\mathit{Cost}}_i \cdot\color{darkred}{\mathit{Use}}_i\\ & \color{darkblue}{\mathit{Demand}} \cdot \color{darkred}{\mathit{Content}}_j = \sum_i \color{darkblue}{\mathit{Element}}_{i,j} \cdot\color{darkred}{\mathit{Use}}_i \\ & \sum_i \color{darkred}{\mathit{Use}}_i = \color{darkblue}{\mathit{Demand}} \\ & \color{darkred}{\mathit{Use}}_i \in [0, \color{darkblue}{\mathit{Available}}_i]\\ & \color{darkred}{\mathit{Content}}_j \in [\color{darkblue}{\mathit{Min}}_j,\color{darkblue}{\mathit{Max}}_j] \end{align} \]

Linear Programming Formulation

\[\begin{align}\min & \sum_i \color{darkblue}{\mathit{Cost}}_i \cdot\color{darkred}{\mathit{Use}}_i\\ & \color{darkblue}{\mathit{Demand}} \cdot \color{darkred}{\mathit{Content}}_j = \sum_i \color{darkblue}{\mathit{Element}}_{i,j} \cdot\color{darkred}{\mathit{Use}}_i \\ & \sum_i \color{darkred}{\mathit{Use}}_i = \color{darkblue}{\mathit{Demand}} \\ & \color{darkred}{\mathit{Use}}_i \in [0, \color{darkblue}{\mathit{Available}}_i]\\ & \color{darkred}{\mathit{Content}}_j \in [\color{darkblue}{\mathit{Min}}_j,\color{darkblue}{\mathit{Max}}_j] \end{align} \]

Even for small, almost trivial models, it makes sense to first develop a mathematical model. Especially, if you are not very experienced in developing linear programming models. Starting with a pen and a piece of paper is sometimes better than immediately start coding.

Implementation in Python/Pulp

An implementation using PuLP can look like:

from io import StringIO
import pandas as pd
import pulp as lp

# for inputting tabular data below
def table(s):
  return pd.read_csv(StringIO(s),sep='\s+',index_col='ID')

#------------------------------------------------------------------
# data
#------------------------------------------------------------------

demand = 5000

requirements = table("""
   ID  Element      Min   Max
   C   Carbon       2     3
   Cu  Copper       0.4   0.6
   Mn  Manganese    1.2   1.65
    """)

supplyData = table("""
  ID  Alloy             C       Cu     Mn     Stock   Price
  A   "Iron alloy"      2.50    0.00   1.30   4000    1.20
  B   "Iron alloy"      3.00    0.00   0.80   3000    1.50
  C   "Iron alloy"      0.00    0.30   0.00   6000    0.90
  D   "Copper alloy"    0.00   90.00   0.00   5000    1.30
  E   "Copper alloy"    0.00   96.00   4.00   2000    1.45
  F   "Aluminum alloy"  0.00    0.40   1.20   3000    1.20
  G   "Aluminum alloy"  0.00    0.60   0.00   2500    1.00
  """)

print("----- Data-------")
print(requirements)
print(supplyData)


#------------------------------------------------------------------
# derived data
#------------------------------------------------------------------

# our sets are stockItems ["A","B",..] and elements ["C","Cu",...] 
Items = supplyData.index
Elements = requirements.index

print("----- Indices-------")
print(Items)
print(Elements)

#------------------------------------------------------------------
# LP Model
#------------------------------------------------------------------


use = lp.LpVariable.dicts("Use",Items,0,None,cat='Continuous')
content = lp.LpVariable.dicts("Content",Elements,0,None,cat='Continuous')

model = lp.LpProblem("Steel", lp.LpMinimize)

# objective : minimize cost
model += lp.lpSum([use[i]*supplyData.loc[i,'Price'] for i in Items ])

# upper bounds wrt availability
for i in Items:
  model += use[i] <= supplyData.loc[i,'Stock']

# final content of elements and their bounds  
for j in Elements:
  model += demand*content[j] == lp.lpSum([use[i]*supplyData.loc[i,j] for i in Items])
  model += content[j] >= requirements.loc[j,'Min']
  model += content[j] <= requirements.loc[j,'Max']

# meet demand
model += lp.lpSum([use[i] for i in Items]) == demand


# for debugging
#print(model)


#------------------------------------------------------------------
# Solve and reporting
#------------------------------------------------------------------

model.solve()


print("----- Model Results-------")
print("Status:", lp.LpStatus[model.status])
print("Objective:",lp.value(model.objective))


# collect results
L = []
for i in Items: 
  L.append(['use',i,0.0,use[i].varValue,supplyData.loc[i,'Stock']])
for j in Elements:
  L.append(['content',j,requirements.loc[j,'Min'],content[j].varValue,requirements.loc[j,'Max']])
results = pd.DataFrame(L,columns=['Variable','Index','Lower','Value','Upper'])
print(results)

Notes:

We input the basic data as data frames. Data frames are a standard way to handle tabular data. Data frames are originally from the R statistical software system.
Usually read_csv is for CSV files. Here we use it to read from a string. Blanks are used as separator to make the table more readable for humans.
For each data frame we added an index column. This index will allow us to select a row from the data frame. Note that the index is a string. In general using strings as index is safer than using an index number. We see much earlier that things are wrong when making a mistake like using $j$ (element) instead of $i$ (raw material).
Python Pandas allows duplicate indices. We can check for this using duplicated() function.
Because we access the data by name, it would not matter if the rows or columns are in a different position. This is more like a database table, where we assume no particular ordering.
We also use a data frame for reporting. Data frames are printed in a nicer way than Python arrays, and they can be exported to CVS files or spreadsheet with one function call.
The variables are also indexed by names. This is accomplished by lp.LpVariable.dicts(). This is safer than using a standard array of variables.
AFAIK, PuLP can only handle a single scalar bound in the LpVariable statement (e.g. all lower bounds for a variables are zero). This means: we have to specify a number of bounds as explicit singleton constraints or use a var.bounds statement.

The results look like:

----- Data-------
      Element  Min   Max
ID                      
C      Carbon  2.0  3.00
Cu     Copper  0.4  0.60
Mn  Manganese  1.2  1.65
             Alloy    C    Cu   Mn  Stock  Price
ID                                              
A       Iron alloy  2.5   0.0  1.3   4000   1.20
B       Iron alloy  3.0   0.0  0.8   3000   1.50
C       Iron alloy  0.0   0.3  0.0   6000   0.90
D     Copper alloy  0.0  90.0  0.0   5000   1.30
E     Copper alloy  0.0  96.0  4.0   2000   1.45
F   Aluminum alloy  0.0   0.4  1.2   3000   1.20
G   Aluminum alloy  0.0   0.6  0.0   2500   1.00
----- Indices-------
Index(['A', 'B', 'C', 'D', 'E', 'F', 'G'], dtype='object', name='ID')
Index(['C', 'Cu', 'Mn'], dtype='object', name='ID')
----- Model Results-------
Status: Optimal
Objective: 5887.57427835
  Variable Index  Lower        Value    Upper
0      use     A    0.0  4000.000000  4000.00
1      use     B    0.0     0.000000  3000.00
2      use     C    0.0   397.763020  6000.00
3      use     D    0.0     0.000000  5000.00
4      use     E    0.0    27.612723  2000.00
5      use     F    0.0   574.624260  3000.00
6      use     G    0.0     0.000000  2500.00
7  content     C    2.0     2.000000     3.00
8  content    Cu    0.4     0.600000     0.60
9  content    Mn    1.2     1.200000     1.65

Safety

We will get an error if we misspell things. E.g. if we use in the second table Mgn instead of Mn, we will see:

KeyError                                  Traceback (most recent call last)
/usr/local/lib/python3.6/dist-packages/pandas/core/indexes/base.py in get_loc(self, key, method, tolerance)
   2896             try:
-> 2897                 return self._engine.get_loc(key)
   2898             except KeyError:

pandas/_libs/index.pyx in pandas._libs.index.IndexEngine.get_loc()

pandas/_libs/index.pyx in pandas._libs.index.IndexEngine.get_loc()

pandas/_libs/hashtable_class_helper.pxi in pandas._libs.hashtable.PyObjectHashTable.get_item()

pandas/_libs/hashtable_class_helper.pxi in pandas._libs.hashtable.PyObjectHashTable.get_item()

KeyError: 'Mn'

During handling of the above exception, another exception occurred:

KeyError                                  Traceback (most recent call last)
9 frames
<ipython-input-3-d87ed8f34980> in <module>()
     59 # final content of elements and their bounds
     60 for j in Elements:
---> 61   model += demand*content[j] == lp.lpSum([use[i]*supplyData.loc[i,j] for i in Items])
     62   model += content[j] >= requirements.loc[j,'Min']
     63   model += content[j] <= requirements.loc[j,'Max']

<ipython-input-3-d87ed8f34980> in <listcomp>(.0)
     59 # final content of elements and their bounds
     60 for j in Elements:
---> 61   model += demand*content[j] == lp.lpSum([use[i]*supplyData.loc[i,j] for i in Items])
     62   model += content[j] >= requirements.loc[j,'Min']
     63   model += content[j] <= requirements.loc[j,'Max']

/usr/local/lib/python3.6/dist-packages/pandas/core/indexing.py in __getitem__(self, key)
   1416                 except (KeyError, IndexError, AttributeError):
   1417                     pass
-> 1418             return self._getitem_tuple(key)
   1419         else:
   1420             # we by definition only have the 0th axis

/usr/local/lib/python3.6/dist-packages/pandas/core/indexing.py in _getitem_tuple(self, tup)
    803     def _getitem_tuple(self, tup):
    804         try:
--> 805             return self._getitem_lowerdim(tup)
    806         except IndexingError:
    807             pass

/usr/local/lib/python3.6/dist-packages/pandas/core/indexing.py in _getitem_lowerdim(self, tup)
    959                     return section
    960                 # This is an elided recursive call to iloc/loc/etc'
--> 961                 return getattr(section, self.name)[new_key]
    962 
    963         raise IndexingError("not applicable")

/usr/local/lib/python3.6/dist-packages/pandas/core/indexing.py in __getitem__(self, key)
   1422 
   1423             maybe_callable = com.apply_if_callable(key, self.obj)
-> 1424             return self._getitem_axis(maybe_callable, axis=axis)
   1425 
   1426     def _is_scalar_access(self, key: Tuple):

/usr/local/lib/python3.6/dist-packages/pandas/core/indexing.py in _getitem_axis(self, key, axis)
   1848         # fall thru to straight lookup
   1849         self._validate_key(key, axis)
-> 1850         return self._get_label(key, axis=axis)
   1851 
   1852 

/usr/local/lib/python3.6/dist-packages/pandas/core/indexing.py in _get_label(self, label, axis)
    154             # but will fail when the index is not present
    155             # see GH5667
--> 156             return self.obj._xs(label, axis=axis)
    157         elif isinstance(label, tuple) and isinstance(label[axis], slice):
    158             raise IndexingError("no slices here, handle elsewhere")

/usr/local/lib/python3.6/dist-packages/pandas/core/generic.py in xs(self, key, axis, level, drop_level)
   3735             loc, new_index = self.index.get_loc_level(key, drop_level=drop_level)
   3736         else:
-> 3737             loc = self.index.get_loc(key)
   3738 
   3739             if isinstance(loc, np.ndarray):

/usr/local/lib/python3.6/dist-packages/pandas/core/indexes/base.py in get_loc(self, key, method, tolerance)
   2897                 return self._engine.get_loc(key)
   2898             except KeyError:
-> 2899                 return self._engine.get_loc(self._maybe_cast_indexer(key))
   2900         indexer = self.get_indexer([key], method=method, tolerance=tolerance)
   2901         if indexer.ndim > 1 or indexer.size > 1:

pandas/_libs/index.pyx in pandas._libs.index.IndexEngine.get_loc()

pandas/_libs/index.pyx in pandas._libs.index.IndexEngine.get_loc()

pandas/_libs/hashtable_class_helper.pxi in pandas._libs.hashtable.PyObjectHashTable.get_item()

pandas/_libs/hashtable_class_helper.pxi in pandas._libs.hashtable.PyObjectHashTable.get_item()

KeyError: 'Mn'

Pulp is not giving a very well-formed error message here (not sure if Pulp can actually do that -- Python is issuing this before Pulp sees what is happening). But at least we are alerted (rather heavy-handedly) there is something wrong when we use Mn. Careful inspection of the stack frame shows we have a problem in the constraint

model += demand*content[j] == lp.lpSum([use[i]*supplyData.loc[i,j] for i in Items])

This error is actually generating an exception inside an exception handler!

Of course a much better and simpler error message would be: "supplyData.loc["A","Mn"]: Column "Mn" not found in data frame supplyData." IMHO programmers do not pay enough attention to provide meaningful error messages.

Solver log

The default solver is CBC via a DLL call. I don't think it is possible to see the solver log using this setup. I prefer to see the solver log, just to make sure there are no surprises. For this I used:

model.solve(lp.COIN_CMD(msg=1))

This will call the CBC executable (via an MPS file) and it will show the CBC log:

Welcome to the CBC MILP Solver
Version: 2.9
Build Date: Jan  6 2019

command line - cbc.exe fbbd73baa2494109b8e990ce26eb79b6-pulp.mps branch printingOptions all solution fbbd73baa2494109b8e990ce26eb79b6-pulp.sol (default strategy 1)
At line 2 NAME          MODEL
At line 3 ROWS
At line 22 COLUMNS
At line 64 RHS
At line 82 BOUNDS
At line 83 ENDATA
Problem MODEL has 17 rows, 10 columns and 34 elements
Coin0008I MODEL read with 0 errors
Presolve 4 (-13) rows, 7 (-3) columns and 18 (-16) elements
0  Obj 479.87991 Primal inf 10199.217 (4)
3  Obj 5887.5743
Optimal - objective value 5887.5743
After Postsolve, objective 5887.5743, infeasibilities - dual 1275.5592 (2), primal 0 (0)
Presolved model was optimal, full model needs cleaning up
Optimal - objective value 5887.5743
Optimal objective 5887.574275 - 3 iterations time 0.012, Presolve 0.00
Option for printingOptions changed from normal to all
Total time (CPU seconds):       0.03   (Wallclock seconds):       0.03

The solver log shows that the presolver removes 13 of the 17 rows. This high reduction rate is related to the singleton constraints. When we look at the model we generated 3+3+7=13 bound constraints. The presolver is getting rid of these and makes proper bounds of them.

Note that: msg=1 may not always work when running as a Jupyter notebook.

Debugging

For debugging PuLP models, I recommend:

print(model). Printing the model shows how PuLP interpreted the constraints.
Writing an LP file: model.writeLP("steel.lp").

The output of print(model) is:

Steel:
MINIMIZE
1.2*Use_A + 1.5*Use_B + 0.9*Use_C + 1.3*Use_D + 1.45*Use_E + 1.2*Use_F + 1.0*Use_G + 0.0
SUBJECT TO
_C1: Use_A <= 4000

_C2: Use_B <= 3000

_C3: Use_C <= 6000

_C4: Use_D <= 5000

_C5: Use_E <= 2000

_C6: Use_F <= 3000

_C7: Use_G <= 2500

_C8: 5000 Content_C - 2.5 Use_A - 3 Use_B = 0

_C9: Content_C >= 2

_C10: Content_C <= 3

_C11: 5000 Content_Cu - 0.3 Use_C - 90 Use_D - 96 Use_E - 0.4 Use_F
 - 0.6 Use_G = 0

_C12: Content_Cu >= 0.4

_C13: Content_Cu <= 0.6

_C14: 5000 Content_Mn - 1.3 Use_A - 0.8 Use_B - 4 Use_E - 1.2 Use_F = 0

_C15: Content_Mn >= 1.2

_C16: Content_Mn <= 1.65

_C17: Use_A + Use_B + Use_C + Use_D + Use_E + Use_F + Use_G = 5000

VARIABLES
Content_C Continuous
Content_Cu Continuous
Content_Mn Continuous
Use_A Continuous
Use_B Continuous
Use_C Continuous
Use_D Continuous
Use_E Continuous
Use_F Continuous
Use_G Continuous

The LP file looks like:

\* Steel *\
Minimize
OBJ: 1.2 Use_A + 1.5 Use_B + 0.9 Use_C + 1.3 Use_D + 1.45 Use_E + 1.2 Use_F
 + Use_G
Subject To
_C1: Use_A <= 4000
_C10: Content_C <= 3
_C11: 5000 Content_Cu - 0.3 Use_C - 90 Use_D - 96 Use_E - 0.4 Use_F
 - 0.6 Use_G = 0
_C12: Content_Cu >= 0.4
_C13: Content_Cu <= 0.6
_C14: 5000 Content_Mn - 1.3 Use_A - 0.8 Use_B - 4 Use_E - 1.2 Use_F = 0
_C15: Content_Mn >= 1.2
_C16: Content_Mn <= 1.65
_C17: Use_A + Use_B + Use_C + Use_D + Use_E + Use_F + Use_G = 5000
_C2: Use_B <= 3000
_C3: Use_C <= 6000
_C4: Use_D <= 5000
_C5: Use_E <= 2000
_C6: Use_F <= 3000
_C7: Use_G <= 2500
_C8: 5000 Content_C - 2.5 Use_A - 3 Use_B = 0
_C9: Content_C >= 2
End

The information is basically the same, but the ordering of the rows is a bit different.

Comparison to CVXPY

We can try to model and solve the same problem using CVXPY. CVXPY is matrix oriented, so very different than PuLP. Here is my attempt:

from io import StringIO
import pandas as pd
import numpy as np
import cvxpy as cp

# for inputting tabular data below
def table(s):
  return pd.read_csv(StringIO(s),sep='\s+',index_col='ID')

#------------------------------------------------------------------
# data
#------------------------------------------------------------------

demand = 5000

requirements = table("""
   ID  Element      Min   Max
   C   Carbon       2     3
   Cu  Copper       0.4   0.6
   Mn  Manganese    1.2   1.65
    """)

supplyData = table("""
  ID  Alloy             C       Cu     Mn     Stock   Price
  A   "Iron alloy"      2.50    0.00   1.30   4000    1.20
  B   "Iron alloy"      3.00    0.00   0.80   3000    1.50
  C   "Iron alloy"      0.00    0.30   0.00   6000    0.90
  D   "Copper alloy"    0.00   90.00   0.00   5000    1.30
  E   "Copper alloy"    0.00   96.00   4.00   2000    1.45
  F   "Aluminum alloy"  0.00    0.40   1.20   3000    1.20
  G   "Aluminum alloy"  0.00    0.60   0.00   2500    1.00
  """)

print("----- Data-------")
print(requirements)
print(supplyData)

#------------------------------------------------------------------
# derived data
#------------------------------------------------------------------

# our sets are stockItems ["A","B",..] and elements ["C","Cu",...] 
Items = supplyData.index
Elements = requirements.index

# extract arrays (make sure order is identical)
Min = requirements.loc[Elements,"Min"]
Max = requirements.loc[Elements,"Max"]
Cost = supplyData.loc[Items,"Price"]
Avail = supplyData.loc[Items,"Stock"]
Element = supplyData.loc[Items,Elements]

# counts
NumItems = np.shape(Items)[0]
NumElements  = np.shape(Elements)[0]

# reshape into proper Numpy column vectors to make cvxpy happy
Min = np.reshape(Min.to_numpy(),(NumElements,1))
Max = np.reshape(Max.to_numpy(),(NumElements,1))
Cost = np.reshape(Cost.to_numpy(),(NumItems,1))
Avail = np.reshape(Avail.to_numpy(),(NumItems,1))
Element = Element.to_numpy()

#------------------------------------------------------------------
# LP Model
#------------------------------------------------------------------

use = cp.Variable((NumItems,1),"Use",nonneg=True)
content = cp.Variable((NumElements,1),"Content",nonneg=True)

model = cp.Problem(cp.Minimize(Cost.T @ use),
                   [cp.sum(use) == demand,
                    cp.multiply(demand,content) == Element.T @ use,  
                    content >= Min,
                    content <= Max,
                    use <= Avail                    
                   ])

#------------------------------------------------------------------
# Solve and reporting
#------------------------------------------------------------------

model.solve(solver=cp.ECOS,verbose=True)

print("----- Model Results-------")
print("status:",model.status)
print("objective:",model.value)
results = pd.DataFrame({'variable':'use', 
                        'index': Items, 
                        'lower':0, 
                        'level':use.value.flatten(),
                        'upper':Avail.flatten()
                        })
results = results.append(pd.DataFrame({'variable':'content', 
                        'index': Elements, 
                        'lower':Min.flatten(), 
                        'level':content.value.flatten(),
                        'upper':Max.flatten()
                        }))
print(results)

Notes:

I did my best to make sure that the ordering of rows and columns in the data frames is not significant.
We convert the information in the data frames to standard NumPy arrays for the benefit of CVXPY. (A column in a dataframe is a pandas series).
If we don't do proper shaping of the arrays, we may see error messages like: ValueError: Cannot broadcast dimensions (3,) (3, 1)
The model is compact, but we needed to put more effort in data extraction. In optimization, it is not at all unusual that data stuff takes more effort than the model equations.

The results look like:

----- Data-------
      Element  Min   Max
ID                      
C      Carbon  2.0  3.00
Cu     Copper  0.4  0.60
Mn  Manganese  1.2  1.65
             Alloy    C    Cu   Mn  Stock  Price
ID                                              
A       Iron alloy  2.5   0.0  1.3   4000   1.20
B       Iron alloy  3.0   0.0  0.8   3000   1.50
C       Iron alloy  0.0   0.3  0.0   6000   0.90
D     Copper alloy  0.0  90.0  0.0   5000   1.30
E     Copper alloy  0.0  96.0  4.0   2000   1.45
F   Aluminum alloy  0.0   0.4  1.2   3000   1.20
G   Aluminum alloy  0.0   0.6  0.0   2500   1.00

ECOS 2.0.7 - (C) embotech GmbH, Zurich Switzerland, 2012-15. Web: www.embotech.com/ECOS

It     pcost       dcost      gap   pres   dres    k/t    mu     step   sigma     IR    |   BT
 0  +6.293e+03  -4.362e+04  +9e+04  1e-01  8e-02  1e+00  4e+03    ---    ---    1  1  - |  -  - 
 1  +5.462e+03  -6.110e+04  +7e+04  2e-01  5e-02  2e+03  3e+03  0.5361  8e-01   0  0  0 |  0  0
 2  +5.497e+03  +1.418e+03  +7e+03  1e-02  4e-03  5e+02  3e+02  0.9313  3e-02   0  0  0 |  0  0
 3  +4.981e+03  +3.654e+03  +2e+03  4e-03  1e-03  2e+02  1e+02  0.6947  5e-02   0  0  0 |  0  0
 4  +5.687e+03  +3.974e+03  +2e+03  7e-03  9e-04  3e+02  9e+01  0.4022  7e-01   0  0  0 |  0  0
 5  +5.653e+03  +5.326e+03  +5e+02  1e-03  2e-04  2e+01  2e+01  0.9127  1e-01   0  0  0 |  0  0
 6  +5.692e+03  +5.535e+03  +2e+02  5e-04  8e-05  1e+01  1e+01  0.5874  1e-01   0  0  0 |  0  0
 7  +5.791e+03  +5.642e+03  +2e+02  6e-04  5e-05  2e+01  7e+00  0.7361  5e-01   0  0  0 |  0  0
 8  +5.843e+03  +5.798e+03  +6e+01  2e-04  2e-05  5e+00  2e+00  0.9890  4e-01   0  0  0 |  0  0
 9  +5.886e+03  +5.883e+03  +4e+00  1e-05  1e-06  3e-01  2e-01  0.9454  1e-02   0  0  0 |  0  0
10  +5.888e+03  +5.888e+03  +5e-02  2e-07  3e-08  4e-03  2e-03  0.9890  2e-03   0  0  0 |  0  0
11  +5.888e+03  +5.888e+03  +6e-04  2e-09  5e-10  5e-05  2e-05  0.9890  1e-04   1  0  0 |  0  0
12  +5.888e+03  +5.888e+03  +6e-06  2e-11  6e-12  5e-07  3e-07  0.9890  1e-04   1  0  0 |  0  0

OPTIMAL (within feastol=1.9e-11, reltol=1.1e-09, abstol=6.3e-06).
Runtime: 0.000566 seconds.

----- Model Results-------
status: optimal
objective: 5887.574272281105
  variable index  lower         level    upper
0      use     A    0.0  4.000000e+03  4000.00
1      use     B    0.0  1.283254e-06  3000.00
2      use     C    0.0  3.977630e+02  6000.00
3      use     D    0.0  5.135476e-07  5000.00
4      use     E    0.0  2.761272e+01  2000.00
5      use     F    0.0  5.746243e+02  3000.00
6      use     G    0.0  5.163966e-06  2500.00
0  content     C    2.0  2.000000e+00     3.00
1  content    Cu    0.4  5.999999e-01     0.60
2  content    Mn    1.2  1.200000e+00     1.65

The results are not rounded. That often means that the solution of an interior point algorithm looks a bit ugly. In essence this is the same solution as we found with PuLP/CBC.

Comparison to GAMS

The GAMS model is closer to PuLP:

*---------------------------------------------------
* data
*---------------------------------------------------

set
  i 'items from inventory' /A*G/
  j 'elements' /C,Cu,Mn/
;

table requirements(j,*)
         Min   Max
   C     2     3
   Cu    0.4   0.6
   Mn    1.2   1.65
;

table supplyData(i,*)
       C      Cu     Mn     Stock   Price
  A    2.5            1.3    4000    1.20
  B    3              0.8    3000    1.50
  C            0.3           6000    0.90
  D           90             5000    1.30
  E           96      4      2000    1.45
  F            0.40   1.20   3000    1.20
  G            0.60          2500    1.00
;

scalar demand /5000/;

*---------------------------------------------------
* LP Model
*---------------------------------------------------

positive variables
    use(i)       'usage of raw material'
    content(j)   'characteristics of final product'
;


* bounds
use.up(i) = supplyData(i,'Stock');
content.lo(j) = requirements(j,'Min');
content.up(j) = requirements(j,'Max');

variable totalCost 'objective variable';

equations
    obj  'objective'
    calcContent(j) 'calculate contents of final product'
    meetDemand 'total demand must be met'
;

obj.. totalCost =e= sum(i, use(i)*supplyData(i,'Price'));

calcContent(j).. demand*content(j) =e= sum(i, use(i)*supplyData(i,j));

meetDemand.. sum(i, use(i)) =e= demand;

model blending /all/;

*---------------------------------------------------
* Solve and reporting
*---------------------------------------------------

solve blending minimizing totalCost using lp;

parameter results(*,*,*);
results('use',i,'lower') = 0;
results('use',i,'level') = use.l(i);
results('use',i,'upper') = supplyData(i,'Stock');
results('content',j,'lower') = requirements(j,'Min');
results('content',j,'level') = content.l(j);
results('content',j,'upper') = requirements(j,'Max');
display results;

Notes:

In GAMS we start with the sets, followed by the data. With external data we can extract sets from data.
The rows and columns in the tables are not order dependent: we can change the order without changing the meaning of the model.
We can specify bounds directly: no need for singleton constraints.
The statement results('use',i,'lower') = 0; is not really needed as the default value is zero. (To be more precise: all data is stored sparse, where "does not exist" is the same as zero). However, this statement forces the set element 'lower' to be before 'level' and 'upper'. Another way to enforce this, is to introduce a dummy set: set dummy /lower,level,upper/. We don't have to use the set. Just the declaration would instill an element ordering.
I used * in the data tables. This is conveniently disabling domain checking, but it is also dangerous. In this case, if we change in the supplyData table "Mn" to "Mng", we will not see an error. It would be safer to use full domain checking, which requires to add a few sets.

The safe version of the data part in GAMS would be:

set
  i    'items from inventory' /A*G/
  d    'demand limits' /Min,Max/
  s    'supply data' /C,Cu,Mn,Stock,Price/
  j(s) 'elements' /C,Cu,Mn/
;

table requirements(j,d)
         Min   Max
   C     2     3
   Cu    0.4   0.6
   Mn    1.2   1.65
;

table supplyData(i,s)
       C      Cu     Mng    Stock   Price
  A    2.5            1.3    4000    1.20
  B    3              0.8    3000    1.50
  C            0.3           6000    0.90
  D           90             5000    1.30
  E           96      4      2000    1.45
  F            0.40   1.20   3000    1.20
  G            0.60          2500    1.00
;

Here the typo "Mng" will immediately give a good error message:

  20  table supplyData(i,s)
  21         C      Cu     Mng    Stock   Price
****                         $170
**** 170  Domain violation for element

For production models it is best to use domain checking throughout.

IMHO, this GAMS model looks a bit more streamlined than the Python models.

The output looks like:

----     70 PARAMETER results  

                 lower       level       upper

use    .A                 4000.000    4000.000
use    .B                             3000.000
use    .C                  397.763    6000.000
use    .D                             5000.000
use    .E                   27.613    2000.000
use    .F                  574.624    3000.000
use    .G                             2500.000
content.C        2.000       2.000       3.000
content.Cu       0.400       0.600       0.600
content.Mn       1.200       1.200       1.650

References

Translating a LP from Excel to Python, https://stackoverflow.com/questions/59579342/translating-a-lp-from-excel-to-python-pulp