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This question already has an answer here:

I've never had problems in finding the $R_{eq}$ of a circuit, but in this case I don't really know how to do it: it's a you can see, a sort of combination of parallel resi

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marked as duplicate by ACuriousMind, John Rennie, Qmechanic May 17 '15 at 19:15

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  • $\begingroup$ related: en.wikipedia.org/wiki/Y-%CE%94_transform $\endgroup$ – Phoenix87 May 17 '15 at 16:48
  • $\begingroup$ You should put a test voltage $V$ across the circuit then solve for passing current $I$ using Kirchhoff's laws. Equivalent resistance will be $R_{eq}={V \over I}$ ($V$ will cancel out) $\endgroup$ – Azad May 17 '15 at 17:55
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This is niether series nor parallel circuit, because of resistor 4. We have to use Kirchoff's laws. We will assume that both ends are connected to a battery to simplify our analysis.

First, reformulating the loop rule, we get that since the potential difference between the top and bottom end is the same, all paths from the top to bottom end must end up with the same potential difference, lets say $V$. There are four paths, (1,3), (1,4,5), (2,4,3) and (2,5). Hence, assuming the current through 4 to go to the left (if value is negative, then current goes to right) and that current goes from top to bottom,

$I_1R_1 + I_3R_3 = V$, $I_2R_2 + I_5R_5 = V$, $I_1R_1 + I_4R_4 + I_5R_5 = V$ and $I_2R_2 - I_4R_4 + I_3R_3 = V$

From Kirchoff's junction rule,

$I_1 + I_2 = I_3 + I_5$, $I_1 = I_4 + I_3$ and $I_2 + I_4 = I_5$

With these equations, we need to solve for $V/I_{net} = V/I_{before} = \frac{V}{I_1+I_2}$. From here it is just mathematics.

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