document.write( "Question 1160651: In 2006, 86% of U.S. households had cable TV. Choose 3 households at random. Find the probability that,
\n" ); document.write( "a. None of the 3 households had cable TV.
\n" ); document.write( "b. All 3 households had cable TV.
\n" ); document.write( "c. At least 1 of the 3 households had cable TV.
\n" ); document.write( " \n" ); document.write( "
Algebra.Com's Answer #784017 by ikleyn(52788)\"\" \"About 
You can put this solution on YOUR website!
.
\n" ); document.write( "
\r\n" );
document.write( "\r\n" );
document.write( "(a)  P = \"1-0.86%29%5E3\" = \"0.14%5E3\" = 0.002744.\r\n" );
document.write( "\r\n" );
document.write( "\r\n" );
document.write( "\r\n" );
document.write( "(b)  P = \"0.86%5E3\" = 0.636056.\r\n" );
document.write( "\r\n" );
document.write( "\r\n" );
document.write( "\r\n" );
document.write( "(c)  P = 1 - \"%281-0.086%29%5E3\" = 1 - 0.002744 = 0.997256.\r\n" );
document.write( "
\r
\n" ); document.write( "\n" ); document.write( "Solved.\r
\n" ); document.write( "
\n" ); document.write( "\n" ); document.write( "All formulas are self-explanatory.\r
\n" ); document.write( "
\n" ); document.write( "
\n" ); document.write( "\n" ); document.write( " \n" ); document.write( "
\n" );