Integration to Solve Modified Sum of Binomial Coefficients
The value of ...
Question
The value of 2c0+222C1+233C2+244C3+....+21111C10is
A
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B
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C
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D
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Solution
The correct option is A (1+x)10=10C0+10C2x2+....+10C0×10Integratingw.r.t.xbetween0and2,weget((1+x)1011)20=∣∣(10C0+10C1+x22+10C1x22+10C2x33+...10C10+x1111)∣∣20⇒31111−111=(10C02+10C1222+10C2233+...+10C1021111)−0⇒2C0+222c1+233c2+...+21111C10=311−111