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Election in Missouri
Main article: 1884 United States presidential election
The 1884 United States presidential election in Missouri took place on November 4, 1884. All contemporary 38 states were part of the 1884 United States presidential election. Voters chose 16 electors to the Electoral College, which selected the president and vice president.[1]
Missouri was won by Governor Grover Cleveland of New York, and Governor Thomas A. Hendricks of Indiana, with 53.49% of the vote, against former Secretary of State and Senator James G. Blaine of Maine and his running mate Senator John A. Logan of Illinois, with 46.02% of the vote.[1]
Results
1884 United States presidential election in Missouri | |||||
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Party | Candidate | Votes | Percentage | Electoral votes | |
Democratic | Grover Cleveland | 236,023 | 53.49% | 16 | |
Republican | James G. Blaine | 203,081 | 46.02% | 0 | |
Prohibition | John St. John | 2,164 | 0.49% | 0 |
See also
References
Recent elections in Missouri | |
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Governor | |
Lieutenant Governor | |
Attorney General | |
State Auditor | |
State Treasurer | |
Secretary of State | |
MO Senate | |
MO House of Representatives | |
U.S. President | |
U.S. Senate | |
U.S. House of Representatives | |
|
State and district results of the 1884 United States presidential election | ||
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