United States presidential election in Maryland, 1992

Main article: United States presidential election, 1992

November 3, 1992



Nominee	Bill Clinton	George H.W. Bush	Ross Perot
Party	Democratic	Republican	Independent
Home state	Arkansas	Texas	Texas
Running mate	Al Gore	Dan Quayle	James Stockdale
Electoral vote	10	0	0
Popular vote	988,571	707,094	281,414
Percentage	49.8%	35.6%	14.2%

County Results

Clinton—>70%

Clinton—60-70%

Clinton—50-60%

Clinton—40-50%

Bush—40-50%

Bush—50-60%

Bush—60-70%

Bush—>70%

Perot—40-50%

President before election

George H. W. Bush
Republican

Elected President

Bill Clinton
Democratic

Elections in Maryland

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The 1992 United States presidential election in Maryland took place on November 3, 1992, as part of the 1992 United States presidential election. Voters chose ten representatives, or electors to the Electoral College, who voted for President and Vice President.

Maryland was won by Governor Bill Clinton (D-Arkansas) with 49.80% of the popular vote over incumbent President George H.W. Bush (R-Texas) with 35.62%. Businessman Ross Perot (I-Texas) finished in third with 14.18% of the popular vote.^[1] Clinton ultimately won the national vote, defeating incumbent President Bush.^[2]

Results

United States presidential election in Maryland, 1992^[1]
Party		Candidate	Votes	Percentage	Electoral votes
	Democratic	Bill Clinton	988,571	49.80%	10
	Republican	George H.W. Bush	707,094	35.62%	0
	Independent	Ross Perot	281,414	14.18%	0
	Libertarian	Andre Marrou	4,715	0.24%	0
	New Alliance	Lenora Fulani	2,786	0.14%	0
	N/A	Write-ins	466	0.02%	0
Totals			1,985,046	100.0%	10

References

1 2 "1992 Presidential General Election Results - Maryland". U.S. Election Atlas. Retrieved 8 June 2012.
↑ "1992 Presidential General Election Results". U.S. Election Atlas. Retrieved 8 June 2012.

State results of the 1992 U.S. presidential election

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(1990 ←) 1992 United States elections (→ 1994)

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