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Thursday, May 23, 2019

Further analysis of poll variance

The stunning feature of the opinion polls leading up to the 2019 Federal Election is that they did not look like the statistics you would expect from independent, random-sample polls of the voting population. All sixteen polls were within one percentage point of each other. As I have indicated previously, this is much more tightly clustered than is mathematically plausible. This post explores that mathematics further.


My initial approach to testing for under-dispersion

One of the foundations of statistics is the notion that if I draw many independent and random samples from a population, the means of those many random samples will be normally distributed around the population mean (represented by the Greek letter mu \(\mu\)). This is known as the Central Limit Theorem or the Sampling Distribution of the Sample Mean. In practice, the Central Limit Theorem holds for samples of size 30 or higher.

The span or spread of the distribution of the many sample means around the population mean will depend on the size of those samples, which is usually denoted with a lower-case \(n\). Statisticians measure this spread through the standard deviation (which is usually denoted by the Greek letter sigma \(\sigma\)). With the two-party preferred voting data, the standard deviation for the sample proportions is given by the following formula:

$$\sigma = \sqrt{\frac{proportion_{CoalitionTPP} * proportion_{LaborTPP}}{n}}$$

While I have the sample sizes for most of the sixteen polls prior to the 2019 Election, I do not have the sample size for the final YouGov/Galaxy poll. Nor do I have the sample size for the Essential poll on 25–29 Apr 2019. For analytical purposes, I have assumed both surveys were of 1000 people. The sample sizes for the sixteen polls ranged from 707 to 3008. The mean sample size was 1403.

If we take the smallest poll, with a sample of 707 voters, we can use the standard deviation to see how likely it was to have a poll result in the range 48 to 49 for the Coalition. We will need to make an adjustment, as most pollsters round their results to the nearest whole percentage point before publication.

So the question we will ask is if we assume the population voting intention for the Coalition was 48.625 per cent (the arithmetic mean of the sixteen polls), what is the probability of a sample of 707 voters being in the range 47.5 to 49.5, which would round to 48 or 49 per cent?


For samples of 707 voters, and assuming the population mean was 48.625, we would only expect to see a poll result of 48 or 49 around 40 per cent of the time. This is the area under the curve from 47.5 to 49.5 on the x-axis when the entire area under the curve sums to 1 (or 100 per cent).

We can compare this with the expected distribution for the largest sample of 3008 voters. Our adjustment here is slightly different, as the pollster, in this case, rounded to the nearest half a percentage point. So we are interested in the area under the curve from 47.75 to 49.25 per cent.


Because the sample size (\(n\)) is larger, the spread of this distribution is narrower (compare the scale on the x-axis for both charts). We would expect almost 60 per cent of the samples to produce a result in the range 48 to 49 if the population mean (\(\mu\)) was 48.625 per cent.

We can extend this technique to all sixteen polls. We can find the proportion of all possible samples we would expect to generate a published poll result of 48 or 49. We can then multiply these probabilities together to get the probability that all sixteen polls would be in the range. Using this method, I estimate that there is a one in 49,706 chance that all sixteen polls should be in the range 48 to 49 for the Coalition (if the polls were independent random samples of the population, and the population mean was 48.625 per cent).

Chi-squared goodness of fit

Another approach is to apply a Chi-squared (\(\chi^2\)) test for goodness of fit to the sixteen polls. We can use this approach because the Central Limit Theorem tells us that the poll results should be normally distributed around the population mean. The Chi-squared test will tell us whether the poll results are normally distributed or not. In this case, the formula for the Chi-squared statistic is:

$$ \chi^2 = \sum_{i=1}^k {\biggl( \frac{x_i - \mu}{\sigma_i} \biggr)}^2 $$

Let's step through this equation. It is nowhere near as scary as it looks. To calculate the Chi-squared statistic, we do the following calculation for each poll:
  • First, we calculate the mean deviation for the poll by taking the published poll result (\(x_i\)) and subtracting the population mean \(\mu\), which we estimated using the arithmetic mean for all of the polls. 
  • We then divide the mean deviation by the standard deviation for the poll (\(\sigma_i\)), and then we
  • square the result (multiply it by itself) - this ensures we get a positive statistic in respect of every poll. 
Finally, we sum these (\(k=16\)) squared results from each of the polls.

If the polls are normally distributed, the absolute difference between the poll result and the population mean (the mean deviation) should be around one standard deviation on average. For sixteen polls that were normally distributed around the population mean, we would expect a Chi-squared statistic around the number sixteen.

If the Chi-squared statistic is much less than 16, the poll results could be under-dispersed. If the Chi-squared statistic is much more than 16, then the poll results could be over-dispersed. For sixteen polls (which have 15 degrees of freedom, because our estimate for the population mean (\(\mu\)) is constrained by and comes from the 16 poll results), we would expect 99 per cent of the Chi-squared statistics to be between 4.6 and 32.8.

The Chi-squared statistic I calculate for the sixteen polls is 1.68, which is much less than the expected 16 on average. I can convert this 1.68 Chi-squared statistic to a probability for 15 degrees of freedom. When I do this, I find that if the polls were truly independent and random samples, (and therefore normally distributed), there would be a one in 108,282 chance of generating the narrow distribution of poll results we saw prior to the 2019 Federal Election. We can confidently say the published polls were under-dispersed.


Note: If I was to use the language of statistics, I would say our null hypothesis (\(H_0\)) has the sixteen poll results normally distributed around the population mean. Now if the null hypothesis is correct, I would expect the Chi-squared statistic to be in the range 4.6 and 32.8 (99 per cent of the time). However, as our Chi-squared statistic is outside this range, we reject the null hypothesis for the alternative hypothesis (\(H_a\)) that collectively, the poll results are not normally distributed.

Why the difference?

It is interesting to speculate on why there is a difference between these two approaches. While both approaches suggest the poll results were statistically unlikely, the Chi-squared test says they are twice as unlikely as the first approach. I suspect the answer comes from the rounding the pollsters apply to their raw results. This impacts on the normality of the distribution of poll results. In the Chi-squared test, I did not look at rounding.

So what went wrong?

There are really two questions here:
  • Why were the polls under-dispersed; and
  • On the day, why did the election result differ from the sixteen prior poll estimates?

To be honest, it is too early to tell with any certainty, for both questions. But we are starting to see statements from the pollsters that suggest where some of the problems may lie.

A first issue seems to be the increased use of online polls. There are a few issues here:
  • Finding a random sample where all Australians have an equal chance of being polled - there have been suggestions of too many educated and politically active people are in the online samples.
  • Resampling the same individuals from time to time - meaning the samples are not independent. (This may explain the lack of noise we see in polls in recent years). If your sample is not representative, and it is used often, then all of your poll results would be skewed.
  • An over-reliance on clever analytics and weights to try and make a pool of online respondents look like the broader population.  These weights are challenging to keep accurate and reliable over time.
More generally, regardless of the polling methodology:
  • the use of weighting, where some groups are under-represented in the raw sample frame can mean that sample errors get magnified.
  • not having quotas and weights for all the factors that align somewhat with cohort political differences can mean polls accidentally do not sample important constituencies.

Like Kevin Bonham, I am not a fan of the following theories
  • Shy Tory voters - too embarrassed to tell pollsters of their secret intention to vote for the Coalition.
  • A late swing after the last poll.

Code snippet

To be transparent about how I approached this task, the python code snippet follows.
import pandas as pd 
import numpy as np
import scipy.stats as stats
import matplotlib.pyplot as plt

import sys
sys.path.append( '../bin' )
plt.style.use('../bin/markgraph.mplstyle')

# --- Raw data
sample_sizes = (
    pd.Series([3008, 1000, 1842, 1201, 1265, 1644, 1079, 826, 
        2003, 1207, 1000, 826, 2136, 1012, 707, 1697]))
measurements = ( # for Labor:
    pd.Series([51.5, 51,   51,   51.5, 52,   51,   52,   51,  
        51,   52,   51,   51,  51,   52,   51,  52]))
roundings =   (
    pd.Series([0.25, 0.5,  0.5,  0.25, 0.5,  0.5,  0.5,  0.5, 
        0.5,  0.5,  0.5,  0.5, 0.5,  0.5,  0.5, 0.5]))

# some pre-processing
Mean_Labor = measurements.mean()
Mean_Coalition = 100 - Mean_Labor
variances = (measurements * (100-measurements)) / sample_sizes 
standard_deviations = pd.Series(np.sqrt(variances)) # sigma

print('Mean measurement: ', Mean_Labor)
print('Measurement counts:\n', measurements.value_counts())
print('Sample size range from/to: ', sample_sizes.min(), 
    sample_sizes.max())
print('Mean sample size: ', sample_sizes.mean())


# --- Using normal distributions
print('-----------------------------------------------------------')
individual_probs = []
for sd, r in zip(standard_deviations.tolist(), roundings):
    individual_probs.append(stats.norm(Mean_Coalition, sd).cdf(49.0 + r) - 
        stats.norm(Mean_Coalition, sd).cdf(48.0 - r))

# print individual probabilities for each poll
print('Individual probabilities: ', individual_probs)

# product of all probabilities to calculate combined probability
probability = pd.Series(individual_probs).product()
print('Overall probability: ', probability)
print('1/Probability: ', 1/probability)


# --- Chi Squared - check normally distributed - two tailed test
print('-----------------------------------------------------------')
dof = len(measurements) - 1 ### degrees of freedom
print('Degrees of freedom: ', dof)
X = pow((measurements - Mean_Labor)/standard_deviations, 2).sum()
X_min = stats.distributions.chi2.ppf(0.005, df=dof)
X_max = stats.distributions.chi2.ppf(0.995, df=dof)
print('Expected X^2 between: ', round(X_min, 2), ' and ', round(X_max, 2))
print('X^2 statistic: ', X)
X_probability = stats.chi2.cdf(X , dof)
print('Probability: ', X_probability)
print('1/Probability: ', 1 / X_probability)


# --- Chi-squared plot
print('-----------------------------------------------------------')
x = np.linspace(0, X_min + X_max, 250)
y = pd.Series(stats.chi2(dof).pdf(x), index=x)

ax = y.plot()
ax.set_title('$\chi^2$ Distribution: degrees of freedom='+str(dof))
ax.axvline(X_min, color='royalblue')
ax.axvline(X_max, color='royalblue')
ax.axvline(X, color='orange')
ax.text(x=(X_min+X_max)/2, y=0.00, s='99% between '+str(round(X_min, 2))+
    ' and '+str(round(X_max, 2)), ha='center', va='bottom')
ax.text(x=X, y=0.01, s='$\chi^2 = '+str(round(X, 2))+'$', 
    ha='right', va='bottom', rotation=90)

ax.set_xlabel('$\chi^2$')
ax.set_ylabel('Probability') 

fig = ax.figure
fig.set_size_inches(8, 4)
fig.tight_layout(pad=1)
fig.text(0.99, 0.0025, 'marktheballot.blogspot.com.au',
        ha='right', va='bottom', fontsize='x-small', 
        fontstyle='italic', color='#999999') 
fig.savefig('./Graphs/Chi-squared.png', dpi=125) 
plt.close()


# --- some normal plots
print('-----------------------------------------------------------')
mu = Mean_Coalition

n = 707
low = 47.5
high = 49.5

sigma = np.sqrt((Mean_Labor * Mean_Coalition) / n)
x = np.linspace(mu - 4*sigma, mu + 4*sigma, 200)
y = pd.Series(stats.norm.pdf(x, mu, sigma), index=x)

ax = y.plot()
ax.set_title('Distribution of samples: n='+str(n)+', μ='+
    str(mu)+', σ='+str(round(sigma,2)))
ax.axvline(low, color='royalblue')
ax.axvline(high, color='royalblue')
ax.text(x=low-0.5, y=0.05, s=str(round(stats.norm.cdf(low, 
    loc=mu, scale=sigma)*100.0,1))+'%', ha='right', va='center')
ax.text(x=high+0.5, y=0.05, s=str(round((1-stats.norm.cdf(high, 
    loc=mu, scale=sigma))*100.0,1))+'%', ha='left', va='center')
mid = str( round(( stats.norm.cdf(high, loc=mu, scale=sigma) - 
    stats.norm.cdf(low, loc=mu, scale=sigma) )*100.0, 1) )+'%'
ax.text(x=48.5, y=0.05, s=mid, ha='center', va='center')

ax.set_xlabel('Per cent')
ax.set_ylabel('Probability') 

fig = ax.figure
fig.set_size_inches(8, 4)
fig.tight_layout(pad=1)
fig.text(0.99, 0.0025, 'marktheballot.blogspot.com.au',
        ha='right', va='bottom', fontsize='x-small', 
        fontstyle='italic', color='#999999') 
fig.savefig('./Graphs/'+str(n)+'.png', dpi=125) 
plt.close()

# ---
n = 3008
low = 47.75
high = 49.25

sigma = np.sqrt((Mean_Labor * Mean_Coalition) / n)
x = np.linspace(mu - 4*sigma, mu + 4*sigma, 200)
y = pd.Series(stats.norm.pdf(x, mu, sigma), index=x)

ax = y.plot()
ax.set_title('Distribution of samples: n='+str(n)+', μ='+
    str(mu)+', σ='+str(round(sigma,2)))
ax.axvline(low, color='royalblue')
ax.axvline(high, color='royalblue')
ax.text(x=low-0.25, y=0.3, s=str(round(stats.norm.cdf(low, 
    loc=mu, scale=sigma)*100.0,1))+'%', ha='right', va='center')
ax.text(x=high+0.25, y=0.3, s=str(round((1-stats.norm.cdf(high, 
    loc=mu, scale=sigma))*100.0,1))+'%', ha='left', va='center')
mid = str( round(( stats.norm.cdf(high, loc=mu, scale=sigma) - 
    stats.norm.cdf(low, loc=mu, scale=sigma) )*100.0, 1) )+'%'
ax.text(x=48.5, y=0.3, s=mid, ha='center', va='center')

ax.set_xlabel('Per cent')
ax.set_ylabel('Probability') 

fig = ax.figure
fig.set_size_inches(8, 4)
fig.tight_layout(pad=1)
fig.text(0.99, 0.0025, 'marktheballot.blogspot.com.au',
        ha='right', va='bottom', fontsize='x-small', 
        fontstyle='italic', color='#999999') 
fig.savefig('./Graphs/'+str(n)+'.png', dpi=125) 
plt.close()

2 comments:

  1. Mark we are heavily indebted to you. Well done again

    ReplyDelete
  2. "An over-reliance on clever analytics and weights to try and make a pool of online respondents look like the broader population. These weights are challenging to keep accurate and reliable over time."

    I suspect this was the main issue. In particular, I suspect tradies were undersampled, and were replaced in the results by algorithms that erroneously said they would vote more strongly for the ALP than they actually did.

    ReplyDelete