Introducing LaTeX Math Typesetting

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[tex]\Delta{T}[/tex]
[tex]lux[/tex]
[tex]V[/tex]
[tex]R_1[/tex]
[tex]R_{LDR}[/tex]
[tex]\simeq{6V}[/tex]
[tex]I[/tex]

[tex]I=\frac{V_{out}-V_{LDR}}{R_1}[/tex]

[tex]R=\frac{V}{I}[/tex]

[tex]\Longrightarrow[/tex]

[tex]...(1)[/tex]
[tex]...(2)[/tex]
[tex](1),(2)[/tex]


[tex]R_{LDR}=\frac{V_{LDR}R_1}{V_{out}-V_{LDR}}[/tex]

[tex]R_1=\sqrt{(10^7-\lim_{R\rightarrow 0})}[/tex]

[tex]R_{Max}[/tex]
[tex]R_{Min}[/tex]

[tex]=3162.27766[/tex]
[tex]\simeq{3000}\Omega[/tex]
[tex]\frac{\delta{y}}{\delta{x}}=\frac{9}{7.8}[/tex]
[tex]=1\frac{1}{13}[/tex]

[tex]R-R_1=m((lux)-(lux)_1)[/tex]

[tex]R-8=-1\frac{1}{13}((lux)-4)[/tex]
[tex]R=-1\frac{1}{13}(lux)+4\frac{4}{13}[/tex]
[tex]13R-14(lux)=160[/tex]
[tex]R=\frac{160-14(lux)}{13}[/tex]
[tex]R=e^{\frac{160-14ln(lux)}{13}}[/tex]
[tex]I=\frac{V}{R}[/tex]
[tex]I=\frac{Q}{t}[/tex]
[tex]ln(R)=\frac{1}{ln(lux)}[/tex]
[tex]\frac{\pi}{6}(0.3)^{3}(7.07)g=\frac{\pi}{6}(0.3)^{3}(1.26)g+3\pi(0.88){u}(0.3)[/tex]
[tex]u=\frac{d^{2}}{18\mu}[\tex]<br /> [tex]\frac{ud\rho}{\mu}[\tex][/tex][/tex]
 
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I thought Latex did not work, but it did. The trouble seems to be with the Review message function. try [tex]\pm[/tex]8 and hit the check button. it is supposed to be plus-minus 8, but comes out f1 8. Latex does work after you send the message, tho.
 
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Testing... one... two... three...

Alrighty------

Humble [tex]\pi[/tex]

John Lennon [tex]\longleftrightarrow[/tex]Yoko Ono

Rev. Jim Bakker [tex]\heartsuit[/tex] Jessica Hahn.

Beyonce' = [tex]\bigodot \bigodot[/tex]

Charlie's Angels = [tex]\bigodot \bigodot[/tex] [tex]\bigodot \bigodot[/tex] [tex]\bigodot \bigodot[/tex]

[tex]\exists[/tex] Elvis iff [tex]\infty[/tex]= -33.043034.

Hello Dave. I am your HAL-9000 heuristic, algorithmic digital computer. Would you like me to open the pod bay door? [tex]\bowtie \perp \parallel \frown[/tex]
 
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Ok. I've been trying to know how to make a lower case script r (for example, like in Griffiths' Electrodynamics book) for about a year now...i was wondering if anyone around here maybe knew how?
 
This board is another reason PHYSICS RULES!

Okay, I have to try this out

[itex]\int_\infty^0 \frac{\partial x}{\partial t}\,dx[/itex]
 
He wants a script r. I am not sure how Griffith's r's look, but have you tried the calligraphic style?

Try [tex]R_{\cal R}[/tex]


Try [ tex ]R_{\cal R}[ \tex ]

I don't think it works with lowercase.
 
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Originally posted by JohnDubYa
He wants a script r. I am not sure how Griffith's r's look, but have you tried the calligraphic style?

Try [tex]R_{\cal R}[/tex]


Try [ tex ]R_{\cal R}[ \tex ]

I don't think it works with lowercase.
You have to use a forward slash ( / ). It won't work if you use back slash ( \ ).
 
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[tex]x^3 + m^2[/tex]


[tex]\partial\^2[/tex]


[tex]i\hbar\frac{\partial\Psi}{\partial t} = \frac{\hbar^2}{2m}\frac{\partial^2\Psi}{\partial x^2} + V\Psi[/tex]


[tex]\partial z[/tex]

[tex]\partial_z[/tex]

[tex]\partial^2[/tex]

[tex]\partial\^2[/tex]

[tex]\partial^2 + m^2[/tex]

[tex]det[\partial^2 + m^2][/tex]
 
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I am posting this demo for Dan:

[itex]\int_\infty^0 \sin(\theta)[/itex]
 
I still want this LaTeX capability for my own discussion boards for helping students with remedial math. Is it available? Can I buy it?
 
[tex]\Delta(x) = v_o + 1/2at^2[/tex]
[tex]cool^n[/tex]
 
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[tex]\Delta x = v_o - 1/2at^2[/tex]
[tex]\Delta x = v_o - 1/2at^2[/tex]
[tex]2drinks = meow^2[/tex]
 
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Hurkyl,

That's kinda funny. I don't see those dashes in my browser. Can you right click on a latex image and view it by itself in a new window? Do the dashes still appear there?

- Warren