Participation criterion

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The participation criterion is a voting system criterion. Voting systems that fail the participation criterion are said to exhibit the no show paradox^[1] and allow a particularly unusual strategy of tactical voting: abstaining from an election can help a voter's preferred choice win. The criterion has been defined^[2] as follows:

• In a deterministic framework, the participation criterion says that the addition of a ballot, where candidate A is strictly preferred to candidate B, to an existing tally of votes should not change the winner from candidate A to candidate B.
• In a probabilistic framework, the participation criterion says that the addition of a ballot, where each candidate of the set X is strictly preferred to each other candidate, to an existing tally of votes should not reduce the probability that the winner is chosen from the set X.

Plurality voting, approval voting, range voting, and the Borda count all satisfy the participation criterion.^{[citation needed]} All Condorcet methods,^[3][4] Bucklin voting,^[5] and IRV^[6] fail.

The participation criterion for voting systems is one example of a rational participation constraint for social choice mechanisms in general.

Quorum requirements[]

The most common failure of the participation criterion is not in the use of particular voting systems, but in simple yes or no measures that place quorum requirements.^{[citation needed]} A public referendum, for example, if it required majority approval and a certain number of voters to participate in order to pass, would fail the participation criterion, as a minority of voters preferring the "no" option could cause the measure to fail by simply not voting rather than voting no. In other words, the addition of a "no" vote may make the measure more likely to pass. A referendum that required a minimum number of yes votes (not counting no votes), by contrast, would pass the participation criterion.

Incompatibility with the Condorcet criterion[]

Hervé Moulin showed in 1988 that whenever there are at least four candidates and at least 25 voters, no resolute (single-valued) Condorcet consistent voting rule satisfies the participation criterion.^[3] However, when there are at most three candidates, the minimax method (with some fixed tie-breaking) satisfies both the Condorcet and the participation criterion.^[3] Similarly, when there are four candidates and at most 11 voters, there is a voting rule that satisfies both criteria,^[7] but no such rule exists for four candidates and 12 voters.^[7] Similar incompatibilities have also been proven for set-valued voting rules.^[7][8][9]

Certain conditions that are weaker than the participation criterion are also incompatible with the Condorcet criterion. For example, weak positive involvement requires that adding a ballot in which candidate A is most-preferred does not change the winner away from A; similarly, weak negative involvement requires that adding a ballot in which A is least-preferred does not make A the winner if it was not the winner before. Both conditions are incompatible with the Condorcet criterion if one allows ballots to include ties.^[10] Another condition that is weaker than participation is half-way monotonicity, which requires that a voter cannot be better off by completely reversing his ballot. Again, half-way monotonicity is incompatible with the Condorcet criterion.^[11]

Examples[]

Copeland[]

This example shows that Copeland's method violates the participation criterion. Assume four candidates A, B, C and D with 13 potential voters and the following preferences:

Preferences	# of voters
A > B > C > D	3
A > C > D > B	1
A > D > C > B	1
B > A > C > D	4
D > C > B > A	4

The three voters with preferences A > B > C > D are unconfident whether to participate in the election.

Voters not participating[]

Assume the 3 voters would not show up at the polling place.

The preferences of the remaining 10 voters would be:

Preferences	# of voters
A > C > D > B	1
A > D > C > B	1
B > A > C > D	4
D > C > B > A	4

The results would be tabulated as follows:

Pairwise election results

		X
		A	B	C	D
Y	A		[X] 8 [Y] 2	[X] 4 [Y] 6	[X] 4 [Y] 6
	B	[X] 2 [Y] 8		[X] 6 [Y] 4	[X] 6 [Y] 4
	C	[X] 6 [Y] 4	[X] 4 [Y] 6		[X] 5 [Y] 5
	D	[X] 6 [Y] 4	[X] 4 [Y] 6	[X] 5 [Y] 5
Pairwise results for X, won-tied-lost		2-0-1	1-0-2	1-1-1	1-1-1

Result: A can defeat two of the three opponents, whereas no other candidate wins against more than one opponent. Thus, A is elected Copeland winner.

Voters participating[]

Now, consider the three unconfident voters decide to participate:

Preferences	# of voters
A > B > C > D	3
A > C > D > B	1
A > D > C > B	1
B > A > C > D	4
D > C > B > A	4

The results would be tabulated as follows:

Pairwise election results

		X
		A	B	C	D
Y	A		[X] 8 [Y] 5	[X] 4 [Y] 9	[X] 4 [Y] 9
	B	[X] 5 [Y] 8		[X] 6 [Y] 7	[X] 6 [Y] 7
	C	[X] 9 [Y] 4	[X] 7 [Y] 6		[X] 5 [Y] 8
	D	[X] 9 [Y] 4	[X] 7 [Y] 6	[X] 8 [Y] 5
Pairwise results for X, won-tied-lost		2-0-1	3-0-0	1-0-2	0-0-3

Result: B is the Condorcet winner and thus, B is Copeland winner, too.

Conclusion[]

By participating in the election the three voters supporting A would change A from winner to loser. Their first preferences were not sufficient to change the one pairwise defeat A suffers without their support. But, their second preferences for B turned both defeats B would have suffered into wins and made B Condorcet winner and thus, overcoming A.

Hence, Copeland fails the participation criterion.

Instant-runoff voting[]

This example shows that instant-runoff voting violates the participation criterion. Assume three candidates A, B and C and 15 potential voters, two of them (in blue) unconfident whether to vote.

Preferences	# of voters
A > B > C	2
A > B > C	3
B > C > A	4
C > A > B	6

Voters not participating[]

If they don't show up at the election the remaining voters would be:

Preferences	# of voters
A > B > C	3
B > C > A	4
C > A > B	6

The following outcome results:

Candidate	Votes for round
	1st	2nd
A	3
B	4	7
C	6	6

Result: After A is eliminated first, B gets his votes and wins.

Voters participating[]

If they participate in the election, the preferences list is:

Preferences	# of voters
A > B > C	5
B > C > A	4
C > A > B	6

The outcome changes as follows:

Candidate	Votes for round
	1st	2nd
A	5	5
B	4
C	6	10

Result: Now, B is eliminated first and C gets his votes and wins.

Conclusion[]

The additional votes for A were not sufficient for winning, but for descending to the second round, thereby eliminating the second preference of the voters. Thus, due to participating in the election, the voters changed the winner from their second preference to their strictly least preference.

Thus, instant-runoff voting fails the participation criterion.

Kemeny–Young method[]

This example shows that the Kemeny–Young method violates the participation criterion. Assume four candidates A, B, C, D with 21 voters and the following preferences:

Preferences	# of voters
A > B > C > D	3
A > C > B > D	3
A > D > C > B	4
B > A > D > C	4
C > B > A > D	2
D > B > A > C	2
D > C > B > A	3

The three voters with preferences A > B > C > D are unconfident whether to participate in the election.

Voters not participating[]

Assume the 3 voters would not show up at the polling place.

The preferences of the remaining 18 voters would be:

Preferences	# of voters
A > C > B > D	3
A > D > C > B	4
B > A > D > C	4
C > B > A > D	2
D > B > A > C	2
D > C > B > A	3

The Kemeny–Young method arranges the pairwise comparison counts in the following tally table:

Candidate pairs		Number who prefer…
X	Y	X	Neither	Y
A	B	7	0	11
A	C	13	0	5
A	D	13	0	5
B	C	6	0	12
B	D	9	0	9
C	D	5	0	13

Result: The ranking A > D > C > B has the highest ranking score of 67 (= 13 + 13 + 13 + 12 + 9 + 7); against e.g. 65 (= 13 + 13 + 13 + 11 + 9 + 6) of B > A > D > C. Thus, A is Kemeny-Young winner.

Voters participating[]

Now, consider the 3 unconfident voters decide to participate:

Preferences	# of voters
A > B > C > D	3
A > C > B > D	3
A > D > C > B	4
B > A > D > C	4
C > B > A > D	2
D > B > A > C	2
D > C > B > A	3

The Kemeny–Young method arranges the pairwise comparison counts in the following tally table:

Candidate pairs		Number who prefer…
X	Y	X	Neither	Y
A	B	10	0	11
A	C	16	0	5
A	D	16	0	5
B	C	9	0	12
B	D	12	0	9
C	D	8	0	13

Result: The ranking B > A > D > C has the highest ranking score of 77 (= 16 + 16 + 13 + 12 + 11 + 9); against e.g. 76 (= 16 + 16 + 13 + 12 + 10 + 9) of A > D > C > B. Thus, B is Kemeny-Young winner.

Conclusion[]

By participating in the election the three voters supporting A would change A from winner to loser. Their ballots support 3 of the 6 pairwise comparisons of the ranking A > D > C >B, but four pairwise comparisons of the ranking B > A > D > C, enough to overcome the first one.

Thus, Kemeny-Young fails the participation criterion.

Majority judgment[]

This example shows that majority judgment violates the participation criterion. Assume two candidates A and B with 5 potential voters and the following ratings:

Candidates		# of voters
A	B
Excellent	Good	2
Fair	Poor	2
Poor	Good	1

The two voters rating A "Excellent" are unconfident whether to participate in the election.

Voters not participating[]

Assume the 2 voters would not show up at the polling place.

The ratings of the remaining 3 voters would be:

Candidates		# of voters
A	B
Fair	Poor	2
Poor	Good	1

The sorted ratings would be as follows:

Candidate	↓ Median point
A
B
	Excellent      Good      Fair      Poor

Result: A has the median rating of "Fair" and B has the median rating of "Poor". Thus, A is elected majority judgment winner.

Voters participating[]

Now, consider the 2 unconfident voters decide to participate:

Candidates		# of voters
A	B
Excellent	Good	2
Fair	Poor	2
Poor	Good	1

The sorted ratings would be as follows:

Candidate	↓ Median point
A
B
	Excellent      Good      Fair      Poor

Result: A has the median rating of "Fair" and B has the median rating of "Good". Thus, B is the majority judgment winner.

Conclusion[]

By participating in the election the two voters preferring A would change A from winner to loser. Their "Excellent" rating for A was not sufficient to change A's median rating since no other voter rated A higher than "Fair". But, their "Good" rating for B turned B's median rating to "Good", since another voter agreed with this rating.

Thus, majority judgment fails the participation criterion.

Minimax[]

This example shows that the minimax method violates the participation criterion. Assume four candidates A, B, C, D with 18 potential voters and the following preferences:

Preferences	# of voters
A > B > C > D	2
A > B > D > C	2
B > D > C > A	6
C > A > B > D	5
D > A > B > C	1
D > C > A > B	2

Since all preferences are strict rankings (no equals are present), all three minimax methods (winning votes, margins and pairwise opposite) elect the same winners.

The two voters (in blue) with preferences A > B > C > D are unconfident whether to participate in the election.

Voters not participating[]

Assume the two voters would not show up at the polling place.

The preferences of the remaining 16 voters would be:

Preferences	# of voters
A > B > D > C	2
B > D > C > A	6
C > A > B > D	5
D > A > B > C	1
D > C > A > B	2

The results would be tabulated as follows:

Pairwise election results

		X
		A	B	C	D
Y	A		[X] 6 [Y] 10	[X] 13 [Y] 3	[X] 9 [Y] 7
	B	[X] 10 [Y] 6		[X] 7 [Y] 9	[X] 3 [Y] 13
	C	[X] 3 [Y] 13	[X] 9 [Y] 7		[X] 11 [Y] 5
	D	[X] 7 [Y] 9	[X] 13 [Y] 3	[X] 5 [Y] 11
Pairwise results for X, won-tied-lost		1-0-2	2-0-1	1-0-2	2-0-1
Worst opposing votes		13	10	11	13
Worst margin		10	4	6	10
Worst opposition		13	10	11	13

• [X] indicates voters who preferred the candidate listed in the column caption to the candidate listed in the row caption
• [Y] indicates voters who preferred the candidate listed in the row caption to the candidate listed in the column caption

Result: B has the closest biggest defeat. Thus, B is elected minimax winner.

Voters participating[]

Now, consider the two unconfident voters decide to participate:

Preferences	# of voters
A > B > C > D	2
A > B > D > C	2
B > D > C > A	6
C > A > B > D	5
D > A > B > C	1
D > C > A > B	2

The results would be tabulated as follows:

Pairwise election results

		X
		A	B	C	D
Y	A		[X] 6 [Y] 12	[X] 13 [Y] 5	[X] 9 [Y] 9
	B	[X] 12 [Y] 6		[X] 7 [Y] 11	[X] 3 [Y] 15
	C	[X] 5 [Y] 13	[X] 11 [Y] 7		[X] 11 [Y] 7
	D	[X] 9 [Y] 9	[X] 15 [Y] 3	[X] 7 [Y] 11
Pairwise results for X, won-tied-lost		1-1-1	2-0-1	1-0-2	1-1-1
Worst opposing votes		13	12	11	15
Worst margin		8	6	4	8
Worst opposition		13	12	11	15

Result: C has the closest biggest defeat. Thus, C is elected minimax winner.

Conclusion[]

By participating in the election the two voters changed the winner from B to C whilst strictly preferring B to C. Their preferences of B over C and D does not advance B's minimax value since B's biggest defeat was against A. Also, their preferences of A and B over C does not degrade C's minimax value since C's biggest defeat was against D. Therefore, only the comparison "A > B" degrade B's value and the comparison "C > D" advanced C's value. This results in C overcoming B.

Thus, the minimax method fails the participation criterion.

Ranked pairs[]

This example shows that the ranked pairs method violates the participation criterion. Assume four candidates A, B, C and D with 26 potential voters and the following preferences:

Preferences	# of voters
A > B > C > D	4
A > D > B > C	8
B > C > A > D	7
C > D > B > A	7

The four voters with preferences A > B > C > D are unconfident whether to participate in the election.

Voters not participating[]

Assume the 4 voters do not show up at the polling place.

The preferences of the remaining 22 voters would be:

Preferences	# of voters
A > D > B > C	8
B > C > A > D	7
C > D > B > A	7

The results would be tabulated as follows:

Pairwise election results

		X
		A	B	C	D
Y	A		[X] 14 [Y] 8	[X] 14 [Y] 8	[X] 7 [Y] 15
	B	[X] 8 [Y] 14		[X] 7 [Y] 15	[X] 15 [Y] 7
	C	[X] 8 [Y] 14	[X] 15 [Y] 7		[X] 8 [Y] 14
	D	[X] 15 [Y] 7	[X] 7 [Y] 15	[X] 14 [Y] 8
Pairwise results for X, won-tied-lost		1-0-2	2-0-1	2-0-1	1-0-2

The sorted list of victories would be:

Pair	Winner
A (15) vs. D (7)	A 15
B (15) vs. C (7)	B 15
B (7) vs. D (15)	D 15
A (8) vs. B (14)	B 14
A (8) vs. C (14)	C 14
C (14) vs. D (8)	C 14

Result: A > D, B > C and D > B are locked in (and the other three can't be locked in after that), so the full ranking is A > D > B > C. Thus, A is elected ranked pairs winner.

Voters participating[]

Now, consider the 4 unconfident voters decide to participate:

Preferences	# of voters
A > B > C > D	4
A > D > B > C	8
B > C > A > D	7
C > D > B > A	7

The results would be tabulated as follows:

Pairwise election results

		X
		A	B	C	D
Y	A		[X] 14 [Y] 12	[X] 14 [Y] 12	[X] 7 [Y] 19
	B	[X] 12 [Y] 14		[X] 7 [Y] 19	[X] 15 [Y] 11
	C	[X] 12 [Y] 14	[X] 19 [Y] 7		[X] 8 [Y] 18
	D	[X] 19 [Y] 7	[X] 11 [Y] 15	[X] 18 [Y] 8
Pairwise results for X, won-tied-lost		1-0-2	2-0-1	2-0-1	1-0-2

The sorted list of victories would be:

Pair	Winner
A (19) vs. D (7)	A 19
B (19) vs. C (7)	B 19
C (18) vs. D (8)	C 18
B (11) vs. D (15)	D 15
A (12) vs. B (14)	B 14
A (12) vs. C (14)	C 14

Result: A > D, B > C and C > D are locked in first. Now, D > B can't be locked in since it would create a cycle B > C > D > B. Finally, B > A and C > A are locked in. Hence, the full ranking is B > C > A > D. Thus, B is elected ranked pairs winner.

Conclusion[]

By participating in the election the four voters supporting A would change A from winner to loser. The clear victory of D > B was essential for A's win in the first place. The additional votes diminished that victory and at the same time gave a boost to the victory of C > D, turning D > B into the weakest link of the cycle B > C > D > B. Since A had no other victories but the one over D and B had no other losses but the one over D, the elimination of D > B made it impossible for A to win.

Thus, the ranked pairs method fails the participation criterion.

Schulze method[]

This example shows that the Schulze method violates the participation criterion. Assume four candidates A, B, C and D with 25 potential voters and the following preferences:

Preferences	# of voters
A > B > C > D	2
B > A > D > C	7
B > C > A > D	1
B > D > C > A	2
C > A > D > B	7
D > B > A > C	2
D > C > A > B	4

The two voters with preferences A > B > C > D are unconfident whether to participate in the election.

Voters not participating[]

Assume the two voters would not show up at the polling place.

The preferences of the remaining 23 voters would be:

Preferences	# of voters
B > A > D > C	7
B > C > A > D	1
B > D > C > A	2
C > A > D > B	7
D > B > A > C	2
D > C > A > B	4

The pairwise preferences would be tabulated as follows:

Matrix of pairwise preferences

	d[·, A]	d[·, B]	d[·, C]	d[·, D]
d[A, ·]		11	9	15
d[B, ·]	12		12	10
d[C, ·]	14	11		8
d[D, ·]	8	13	15

Now, the strongest paths have to be identified, e.g. the path A > D > B is stronger than the direct path A > B (which is nullified, since it is a loss for A).

Strengths of the strongest paths

	p[·, A]	p[·, B]	p[·, C]	p[·, D]
p[A, ·]		13	15	15
p[B, ·]	12		12	12
p[C, ·]	14	13		14
p[D, ·]	14	13	15

Result: The full ranking is A > D > C > B. Thus, A is elected Schulze winner.

Voters participating[]

Now, consider the 2 unconfident voters decide to participate:

Preferences	# of voters
A > B > C > D	2
B > A > D > C	7
B > C > A > D	1
B > D > C > A	2
C > A > D > B	7
D > B > A > C	2
D > C > A > B	4

The pairwise preferences would be tabulated as follows:

Matrix of pairwise preferences

	d[·, A]	d[·, B]	d[·, C]	d[·, D]
d[A, ·]		13	11	17
d[B, ·]	12		14	12
d[C, ·]	14	11		10
d[D, ·]	8	13	15

Now, the strongest paths have to be identified, e.g. the path C > A > D is stronger than the direct path C > D.

Strengths of the strongest paths

	p[·, A]	p[·, B]	p[·, C]	p[·, D]
p[A, ·]		13	15	17
p[B, ·]	14		14	14
p[C, ·]	14	13		14
p[D, ·]	14	13	15

Result: The full ranking is B > A > D > C. Thus, B is elected Schulze winner.

Conclusion[]

By participating in the election the two voters supporting A changed the winner from A to B. In fact, the voters can turn the defeat in direct pairwise comparison of A against B into a victory. But in this example, the relation between A and B does not depend on the direct comparison, since the paths A > D > B and B > C > A are stronger. The additional voters diminish D > B, the weakest link of the A > D > B path, while giving a boost to B > C, the weakest link of the path B > C > A.

Thus, the Schulze method fails the participation criterion.

See also[]

• Consistency criterion
• Voting system

References[]

Further reading[]

• Woodall, Douglas R, "Monotonicity and Single-Seat Election Rules" Voting matters, Issue 6, 1996