United States presidential election in Hawaii, 1996

United States presidential election in Hawaii, 1996
Hawaii
November 5, 1996
 
Nominee Bill Clinton Bob Dole Ross Perot
Party Democratic Republican Reform
Home state Arkansas Kansas Texas
Running mate Al Gore Jack Kemp Patrick Choate
Electoral vote 4 0 0
Popular vote 205,012 113,943 27,358
Percentage 57.0% 31.7% 7.6%

County Results
  Clinton—70-80%
  Clinton—50-60%
President before election

Bill Clinton
Democratic

 Elected President

Bill Clinton
Democratic

The 1996 United States presidential election in Hawaii took place on November 5, 1996 as part of the 1996 United States presidential election. Voters chose 4 representatives, or electors to the Electoral College, who voted for President and Vice President.

Hawaii was won by President Bill Clinton (D) over Senator Bob Dole (R-KS), with Clinton winning 56.93% to 31.64% by a margin of 25.29%. Billionaire businessman Ross Perot (Reform Party of the United States of America-TX) finished in third with 7.6% of the popular vote .[1]

Results

United States presidential election in Hawaii, 1996
Party Candidate Running mate Votes Percentage Electoral votes
Democratic Bill Clinton (incumbent) Al Gore 205,012 56.93% 4
Republican Bob Dole Jack Kemp 113,943 31.64% 0
Reform Ross Perot Patrick Choate 27,358 7.60% 0
Green Ralph Nader Winona LaDuke 10,386 2.88% 0
Libertarian Harry Browne Jo Jorgensen 2,493 0.69% 0
Natural Law Dr. John Hagelin Dr. V. Tompkins 570 0.16% 0
U.S. Taxpayers' Party Howard Phillips Herbert Titus 358 0.10% 0
Totals 360,120 100.0% 4

References

  1. http://uselectionatlas.org/RESULTS/index.html

See also

This article is issued from Wikipedia - version of the 7/25/2016. The text is available under the Creative Commons Attribution/Share Alike but additional terms may apply for the media files.