$\sqrt{2x^{3}+ 4x^{2}+ 4x} - \sqrt{16x^{3}+12x^{2} + 6x - 3} \geq 4x^{4} + 2x^{3} - 2x - 1$
Lời giải:ĐK: 2x(x2+2x+2)0x0
BPT2x3+4x2+4x(2x+1)+(2x+1)16x3+12x2+6x33

(2x31)(2x+1)

Đặt a=2x3+4x2+4x(2x+1)A=2x3+4x2+4x+(2x+1)b=(2x+1)16x3+12x2+6x33B=(2x+1)2+(2x+1)16x3+12x2+6x33+(16x3+12x2+6x3)23

{a.A=2x31b.B=8x3+4=4(2x31)
BPT trở thành:
a+b(2x31)(2x+1)

a.AA+b.BB(2x31)(2x+1)0

2x31A4(2x31)B(2x31)(2x+1)0

(2x31)(1A4B2x1)0

(2x31)(1AA4B2x)0

Do x0A1 và B>0 (bình phương thiếu một tổng)
1AA<0;4B<0;2x0

(1AA4B2x)0

2x310

0x123=432


tham khảo thôi chứ bài này thật thì mình chẳng biết làm

:D...đúng là thánh admin mak ko pro ms lạ –  ๖ۣۜJinღ๖ۣۜKaido 03-03-16 08:42 PM
hì............ –  Nguyễn Trâm 03-03-16 08:34 PM
@@................. –  thánh FA 03-03-16 08:27 PM
nghĩ k ra ms đăng, đăng xong ra luôn –  Nguyễn Trâm 03-03-16 08:26 PM
mà sao ms đăng 28' mà lm ra r ak? –  thánh FA 03-03-16 08:25 PM
bài đăng ấy –  Nguyễn Trâm 03-03-16 08:22 PM
xóa j??????? –  thánh FA 03-03-16 08:21 PM
k biết xoá chỗ nào :D –  Nguyễn Trâm 03-03-16 08:20 PM
mình giải đc lâu rùi bạn –  Nguyễn Trâm 03-03-16 08:20 PM

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