CSICTF-Writeups/Miscellaneous/Friends
rishitsaiya aca8780568 Added Miscellaneous Challenges 2020-07-31 18:23:33 +05:30
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README.md Added Miscellaneous Challenges 2020-07-31 18:23:33 +05:30
namo.py Added Miscellaneous Challenges 2020-07-31 18:23:33 +05:30

README.md

Friends

The main idea finding the flag is just parsing the input smartly.

Step-1:

When we download namo.py, we are greeted with:

import math
import sys

def fancy(x):
    a = (1/2) * x
    b = (1/2916) * ((27 * x - 155) ** 2)
    c = 4096 / 729
    d = (b - c) ** (1/2)
    e = (a - d - 155/54) ** (1/3)
    f = (a + d - 155/54) ** (1/3)
    g = e + f + 5/3
    return g

def notfancy(x):
    return x**3 - 5*x**2 + 3*x + 10

def mathStuff(x):
    if (x < 3 or x > 100):
        exit()

    y = fancy(notfancy(x))

    if isinstance(y, complex):
        y = float(y.real)

    y = round(y, 0)
    return y

print("Enter a number: ")
sys.stdout.flush()
x = round(float(input()), 0)
if x == mathStuff(x):
    print('Fail')
    sys.stdout.flush()
else:
    print(open('namo.txt').read())
    sys.stdout.flush()

Step-2:

So I tried basic numbers and it worked according to the given algorithm but however, we could try a float nan and then I ran it along with the remote server to enter the else condition at the end.

echo nan | nc chall.csivit.com 30425

Output:

Enter a number: 
Mitrooon
bhaiyo aur behno "Enter a number"
mann ki baat nambar

agar nambar barabar 1 hai {
	bhaiyo aur behno "s"
}

nahi toh agar nambar barabar 13 hai {
	bhaiyo aur behno "_"
}


nahi toh agar nambar barabar 15 hai {
	bhaiyo aur behno "5"
}


nahi toh agar nambar barabar 22 hai {
	bhaiyo aur behno "4"
}


nahi toh agar nambar barabar 28 hai {
	bhaiyo aur behno "k"
}


nahi toh agar nambar barabar 8 hai {
	bhaiyo aur behno "y"
}


nahi toh agar nambar barabar 17 hai {
	bhaiyo aur behno "4"
}


nahi toh agar nambar barabar 9 hai {
	bhaiyo aur behno "_"
}


nahi toh agar nambar barabar 4 hai {
	bhaiyo aur behno "t"
}


nahi toh agar nambar barabar 3 hai {
	bhaiyo aur behno "c"
}


nahi toh agar nambar barabar 20 hai {
	bhaiyo aur behno "r"
}


nahi toh agar nambar barabar 12 hai {
	bhaiyo aur behno "n"
}


nahi toh agar nambar barabar 0 hai {
	bhaiyo aur behno "c"
}


nahi toh agar nambar barabar 23 hai {
	bhaiyo aur behno "t"
}


nahi toh agar nambar barabar 27 hai {
	bhaiyo aur behno "0"
}


nahi toh agar nambar barabar 10 hai {
	bhaiyo aur behno "n"
}


nahi toh agar nambar barabar 11 hai {
	bhaiyo aur behno "4"
}


nahi toh agar nambar barabar 7 hai {
	bhaiyo aur behno "m"
}


nahi toh agar nambar barabar 25 hai {
	bhaiyo aur behno "c"
}


nahi toh agar nambar barabar 24 hai {
	bhaiyo aur behno "_"
}


nahi toh agar nambar barabar 6 hai {
	bhaiyo aur behno "{"
}


nahi toh agar nambar barabar 16 hai {
	bhaiyo aur behno "_"
}


nahi toh agar nambar barabar 18 hai {
	bhaiyo aur behno "_"
}


nahi toh agar nambar barabar 2 hai {
	bhaiyo aur behno "i"
}


nahi toh agar nambar barabar 5 hai {
	bhaiyo aur behno "f"
}


nahi toh agar nambar barabar 19 hai {
	bhaiyo aur behno "g"
}


nahi toh agar nambar barabar 14 hai {
	bhaiyo aur behno "1"
}


nahi toh agar nambar barabar 21 hai {
	bhaiyo aur behno "3"
}


nahi toh agar nambar barabar 26 hai {
	bhaiyo aur behno "0"
}


nahi toh agar nambar barabar 29 hai {
	bhaiyo aur behno "}"
}

nahi toh {
	bhaiyo aur behno ""
}

achhe din aa gaye

Step-3:

Simple substitution like 0=c, 1=s, 2=i in the context of flag like csictf{, would also work. Instead I got this script to get the flag.

echo nan | nc chall.csivit.com 30425 | grep -A1 'hai {' | sed 's/agar nambar barabar //' | sed 's/nahi toh //' | sed 's/ hai {$/ =/' | sed 's/^\tbhaiyo aur behno \"//' | sed 's/\"$//' | sed 's/--//' | sed ':a;N;$!ba;s/=\n/ /g' | sort -n | uniq | awk '{print $2}' | tr -d '\n'; echo ''

This is a 1 liner and we get the flag after this.

Step-5:

Finally the flag becomes: csictf{my_n4n_15_4_gr34t_c00k}