分析:根據(jù)去括號(hào)與添括號(hào)的法則對(duì)各項(xiàng)由此判斷即可解答.
解答:解:A��、應(yīng)為a-(b+c)=a-b-c�����,故本選項(xiàng)錯(cuò)誤����;
B、應(yīng)為a+(b+c)=a+b+c�,故本選項(xiàng)錯(cuò)誤;
C�、a+b-c=a+(b-c),正確
D�����、應(yīng)為a-b+c=a-(b-c),故本選項(xiàng)錯(cuò)誤.
故選C.
點(diǎn)評(píng):本題主要考查去括號(hào)與添括號(hào)�,去括號(hào)法則:如果括號(hào)外的因數(shù)是正數(shù),去括號(hào)后原括號(hào)內(nèi)各項(xiàng)的符號(hào)與原來的符號(hào)相同���;如果括號(hào)外的因數(shù)是負(fù)數(shù)���,去括號(hào)后原括號(hào)內(nèi)各項(xiàng)的符號(hào)與原來的符號(hào)相反.添括號(hào)法則:添括號(hào)時(shí),如果括號(hào)前面是正號(hào)����,括到括號(hào)里的各項(xiàng)都不變號(hào),如果括號(hào)前面是負(fù)號(hào)�,括號(hào)括號(hào)里的各項(xiàng)都改變符號(hào).
