con hâm

a. -234 + 145 + (-2013) + 155 +(-66) = -2013

b. -95.(-454)-456.95= 95.(454 -456) = -190

admin là con chó

a. 95 - 5.(x + 2) = 45

5.(x + 2)             = 95 - 45

x + 2                   = 50 : 5

x                         = 10 - 2

x                         = 8

b. 14x + 54 = 82

14x             = 82 - 54

x                 = 28 : 14

x                 = 2

c. 15x - 133 = 17

15x              = 17 + 133

x                  = 150 : 15

x                  = 10

d. 155 - 10.(x + 1) = 55

10.(x + 1)              = 155 - 55

x + 1                      = 100 : 10

x                            = 10 - 1

x                            = 9

A,(x+1)+(x+4)+(x+7)+...+(x+25)+(x+28)=155

x+1+x+4+x+7+...+x+25+x+28=155

x.[(28-1):3+1]+(1+4+7+...+25+28)=155

10.x+[(28+1).10:2]=155

10.x+145=155

A

<=>x+1+x+4+x+7+...+x+25+x+28=155

<=>10x.(1+4+7+10+13+16+19+22+25+28)=155

<=>10x.145  =155

<=>10x=155:145=\(\frac{31}{29}\)

x=\(\frac{31}{29}:10=\frac{31}{290}\)

Vậy x=\(\frac{31}{290}\)

a, (x + 1) + (x + 4) + ... + (x + 28) = 155
<=> (x + x + ... + x) + (1 + 4 + ... + 28) = 155
<=> 10x + 145 = 155
<=> 10x = 10
<=> x = 1
b, (x + 9) + (x - 2) + (x + 7) + (x - 4) + ... + (x - 8) + (x + 1) = 95
<=> (x + 9 + x + 7 + ... + x + 1) + (x - 2 + x - 4 + .. + x - 8) = 95
<=> (5x + 25) + (4x - 20) = 95
<=> (5x + 4x) + (25 - 20) = 95
<=> 9x + 5 = 95
<=> 9x = 90
<=> x = 10
@láo như cáo

aa) -(345+96345+96)+(−155+1996−155+1996)

=−345−96−155+1996=−345−96−155+1996

== (−345−155−345−155) - (96−199696−1996)

=−500+1900=−500+1900

=1400=1400

bb) (−456+95−456+95)-(-456+95456+95)-192192

=−456+95+456−95−192=−456+95+456−95−192

== (−456+456−456+456) + (95−9595−95) -192192

=−192=−192

cc) (a−b+ca−b+c)- (c−bc−b)+aa

=a−b+c−c+b+a=a−b+c−c+b+a

== (a+aa+a) + (−b+b−b+b) + (c−cc−c)

=2a=2a

dd)-(a−b+ca−b+c)+(c−bc−b)+aa

=−a+b−c+c−b+a=−a+b−c+c−b+a

== (−a+a−a+a) + (b−bb−b) + (−c+c−c+c)

=0=0

ee) (a−b+ca−b+c)+(c−bc−b)+aa

=a−b+c+c−b+a=a−b+c+c−b+a

== (a+aa+a) + (−b−b−b−b) + (c+cc+c)

=2a−2b+2c

sao có những chỗ liên tiếp vậy bn?

a) Ta có: \(\left\{{}\begin{matrix}p+e+n=155\\p=e\\p+e-n=33\end{matrix}\right.\Leftrightarrow\left\{{}\begin{matrix}p=e=47\\n=61\end{matrix}\right.\)

        \(\Rightarrow A=p+n=47+61=108\left(u\right)\)

\(KHNT:^{108}_{47}Ag\) 

b) 

Ta có: \(\left\{{}\begin{matrix}p+e+n=95\\p=e\\\dfrac{p+n}{e}=\dfrac{13}{6}\end{matrix}\right.\Leftrightarrow\left\{{}\begin{matrix}p=e=30\\n=35\end{matrix}\right.\)

        \(\Rightarrow A=p+n=30+35=65\left(u\right)\)

\(KHNT:^{65}_{30}Zn\)

c) 

Ta có: \(\left\{{}\begin{matrix}p+n=80\\p=e\\n-p=10\end{matrix}\right.\Leftrightarrow\left\{{}\begin{matrix}p=e=35\\n=45\end{matrix}\right.\)

        \(\Rightarrow A=p+n=35+45=80\left(u\right)\)

\(KHNT:^{80}_{35}Br\)

d) 

Ta có: \(\left\{{}\begin{matrix}p+e+n=52\\p=e\\n-e=1\end{matrix}\right.\Leftrightarrow\left\{{}\begin{matrix}p=e=17\\n=18\end{matrix}\right.\)

        \(\Rightarrow A=p+n=17+18=35\left(u\right)\)

\(KHNT:^{35}_{17}Cl\)

Bài 1 :

\(a,569:569-340:339\)

=\(1-\frac{340}{339}\)

=\(-\frac{1}{339}\)

\(b,155-\left[2.\left(30+5-26\right).\left(24:2\right)\right]\)

=\(155-\left[2.9.12\right]\)

=\(155-216\)

=\(-61\)

\(c,37.143+37.57+1300\)

=\(37.\left(143+57\right)+1300\)

=\(37.200+1300\)

=\(7400+1300\)

=\(8700\)

Bài 2 :

\(95-5x=23+18:9\)

=>\(95-5x=23+2=25\)

=>\(5x=95-25=70\)

=>\(x=70:5=14\)

Vậy x ∈ {14}