Dependency of an option price on time till expiry

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2












$begingroup$


I am trying to seek satisfaction when it comes to understanding why the price of an option is dependent on the time until expiry.



I have read that the longer till expiration, the more time available for movement in the underlying stock price, and more chance of being on the desirable side of the strike price (assuming positive drift), so this should mean that the option price is higher than when we have shorter times till expiration.



But if the drift was a larger positive, this should mean that the price of the option is greater as we have even more chance now of landing in the money. But this isn't true since the drift does not affect the option price, telling me that the reasoning above isn't quite right.



Could someone please shed some light on how to understand how the time till expiration affects the option price.










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$endgroup$







  • 2




    $begingroup$
    The more time until expiration the more "spread out" will be the stock price at maturity. Tomorrow the price of AAPL wil be a couple of percent above/below today, but a year from now it could be dozens of percent above below. To a stockholder this does not matter much because the possibility of a rise is matched by the possibility of a fall. But the payoff to a call is asymmetric, you profit greatly from a big rise but you do not suffer much from a big fall since the payoff is zero. Therefore the call holder benefits from a wider dispersion of stock prices at maturity.
    $endgroup$
    – Alex C
    Jan 28 at 18:05











  • $begingroup$
    @AlexC you mention that the possibility of a rise is matched by the possibility of a fall, but doesnt this then depend on the average growth rate of the stock?
    $endgroup$
    – DLB
    Feb 11 at 11:55















2












$begingroup$


I am trying to seek satisfaction when it comes to understanding why the price of an option is dependent on the time until expiry.



I have read that the longer till expiration, the more time available for movement in the underlying stock price, and more chance of being on the desirable side of the strike price (assuming positive drift), so this should mean that the option price is higher than when we have shorter times till expiration.



But if the drift was a larger positive, this should mean that the price of the option is greater as we have even more chance now of landing in the money. But this isn't true since the drift does not affect the option price, telling me that the reasoning above isn't quite right.



Could someone please shed some light on how to understand how the time till expiration affects the option price.










share|improve this question











$endgroup$







  • 2




    $begingroup$
    The more time until expiration the more "spread out" will be the stock price at maturity. Tomorrow the price of AAPL wil be a couple of percent above/below today, but a year from now it could be dozens of percent above below. To a stockholder this does not matter much because the possibility of a rise is matched by the possibility of a fall. But the payoff to a call is asymmetric, you profit greatly from a big rise but you do not suffer much from a big fall since the payoff is zero. Therefore the call holder benefits from a wider dispersion of stock prices at maturity.
    $endgroup$
    – Alex C
    Jan 28 at 18:05











  • $begingroup$
    @AlexC you mention that the possibility of a rise is matched by the possibility of a fall, but doesnt this then depend on the average growth rate of the stock?
    $endgroup$
    – DLB
    Feb 11 at 11:55













2












2








2





$begingroup$


I am trying to seek satisfaction when it comes to understanding why the price of an option is dependent on the time until expiry.



I have read that the longer till expiration, the more time available for movement in the underlying stock price, and more chance of being on the desirable side of the strike price (assuming positive drift), so this should mean that the option price is higher than when we have shorter times till expiration.



But if the drift was a larger positive, this should mean that the price of the option is greater as we have even more chance now of landing in the money. But this isn't true since the drift does not affect the option price, telling me that the reasoning above isn't quite right.



Could someone please shed some light on how to understand how the time till expiration affects the option price.










share|improve this question











$endgroup$




I am trying to seek satisfaction when it comes to understanding why the price of an option is dependent on the time until expiry.



I have read that the longer till expiration, the more time available for movement in the underlying stock price, and more chance of being on the desirable side of the strike price (assuming positive drift), so this should mean that the option price is higher than when we have shorter times till expiration.



But if the drift was a larger positive, this should mean that the price of the option is greater as we have even more chance now of landing in the money. But this isn't true since the drift does not affect the option price, telling me that the reasoning above isn't quite right.



Could someone please shed some light on how to understand how the time till expiration affects the option price.







options option-pricing european-options






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share|improve this question













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share|improve this question








edited Jan 28 at 20:54









LocalVolatility

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5,34531329










asked Jan 28 at 17:53









DLBDLB

534




534







  • 2




    $begingroup$
    The more time until expiration the more "spread out" will be the stock price at maturity. Tomorrow the price of AAPL wil be a couple of percent above/below today, but a year from now it could be dozens of percent above below. To a stockholder this does not matter much because the possibility of a rise is matched by the possibility of a fall. But the payoff to a call is asymmetric, you profit greatly from a big rise but you do not suffer much from a big fall since the payoff is zero. Therefore the call holder benefits from a wider dispersion of stock prices at maturity.
    $endgroup$
    – Alex C
    Jan 28 at 18:05











  • $begingroup$
    @AlexC you mention that the possibility of a rise is matched by the possibility of a fall, but doesnt this then depend on the average growth rate of the stock?
    $endgroup$
    – DLB
    Feb 11 at 11:55












  • 2




    $begingroup$
    The more time until expiration the more "spread out" will be the stock price at maturity. Tomorrow the price of AAPL wil be a couple of percent above/below today, but a year from now it could be dozens of percent above below. To a stockholder this does not matter much because the possibility of a rise is matched by the possibility of a fall. But the payoff to a call is asymmetric, you profit greatly from a big rise but you do not suffer much from a big fall since the payoff is zero. Therefore the call holder benefits from a wider dispersion of stock prices at maturity.
    $endgroup$
    – Alex C
    Jan 28 at 18:05











  • $begingroup$
    @AlexC you mention that the possibility of a rise is matched by the possibility of a fall, but doesnt this then depend on the average growth rate of the stock?
    $endgroup$
    – DLB
    Feb 11 at 11:55







2




2




$begingroup$
The more time until expiration the more "spread out" will be the stock price at maturity. Tomorrow the price of AAPL wil be a couple of percent above/below today, but a year from now it could be dozens of percent above below. To a stockholder this does not matter much because the possibility of a rise is matched by the possibility of a fall. But the payoff to a call is asymmetric, you profit greatly from a big rise but you do not suffer much from a big fall since the payoff is zero. Therefore the call holder benefits from a wider dispersion of stock prices at maturity.
$endgroup$
– Alex C
Jan 28 at 18:05





$begingroup$
The more time until expiration the more "spread out" will be the stock price at maturity. Tomorrow the price of AAPL wil be a couple of percent above/below today, but a year from now it could be dozens of percent above below. To a stockholder this does not matter much because the possibility of a rise is matched by the possibility of a fall. But the payoff to a call is asymmetric, you profit greatly from a big rise but you do not suffer much from a big fall since the payoff is zero. Therefore the call holder benefits from a wider dispersion of stock prices at maturity.
$endgroup$
– Alex C
Jan 28 at 18:05













$begingroup$
@AlexC you mention that the possibility of a rise is matched by the possibility of a fall, but doesnt this then depend on the average growth rate of the stock?
$endgroup$
– DLB
Feb 11 at 11:55




$begingroup$
@AlexC you mention that the possibility of a rise is matched by the possibility of a fall, but doesnt this then depend on the average growth rate of the stock?
$endgroup$
– DLB
Feb 11 at 11:55










1 Answer
1






active

oldest

votes


















5












$begingroup$

You've tagged this with 'black-scholes' but you don't have to make the assumptions of the Black-Scholes-Merton model to understand why the option price with time to expiry.



Consider this example: Consider 2 ATM put options on a stock with a time to expiry of one month and one year with some strike price. The maximum pay-out is achieved when the company goes bust, what is more likely, and which option is thus more valuable, that the company goes bust within a month or within a year?



More generally, the price of an ATM or OTM option increases as uncertainty about the price at expiry increases.



More uncertainty allows the stock price to move further away from the strike in the profitable correction which is increases the value, for a call the value can grow without bound. It also can move the other way in which case the option becomes less valuable but never zero or less.



For ITM put options, time can work against the put option holder. The stock has a hard lower bound so the upside for the put option holder is limited but it could make a recovery in which case the option decreases in value.






share|improve this answer











$endgroup$












  • $begingroup$
    Regarding the example you provided, I have seen a lot of graphed solutions to the Black Scholes PDE and they indicate a shorter time till expiration comes with a greater price?
    $endgroup$
    – DLB
    Jan 28 at 18:32











  • $begingroup$
    Could you show such a graph, all else equal price should increase with time till expiration.
    $endgroup$
    – Bob Jansen
    Jan 28 at 18:35










  • $begingroup$
    Figure 2 in the link math.unl.edu/~sdunbar1/MathematicalFinance/Lessons/BlackScholes/… shows the value of a put option at different times.
    $endgroup$
    – DLB
    Jan 28 at 18:39











  • $begingroup$
    I hadn't considered that case, updated the answer.
    $endgroup$
    – Bob Jansen
    Jan 28 at 18:54










  • $begingroup$
    Is there a reason we don't see this same case structure when we consider call options?
    $endgroup$
    – DLB
    Jan 28 at 19:04










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1 Answer
1






active

oldest

votes








1 Answer
1






active

oldest

votes









active

oldest

votes






active

oldest

votes









5












$begingroup$

You've tagged this with 'black-scholes' but you don't have to make the assumptions of the Black-Scholes-Merton model to understand why the option price with time to expiry.



Consider this example: Consider 2 ATM put options on a stock with a time to expiry of one month and one year with some strike price. The maximum pay-out is achieved when the company goes bust, what is more likely, and which option is thus more valuable, that the company goes bust within a month or within a year?



More generally, the price of an ATM or OTM option increases as uncertainty about the price at expiry increases.



More uncertainty allows the stock price to move further away from the strike in the profitable correction which is increases the value, for a call the value can grow without bound. It also can move the other way in which case the option becomes less valuable but never zero or less.



For ITM put options, time can work against the put option holder. The stock has a hard lower bound so the upside for the put option holder is limited but it could make a recovery in which case the option decreases in value.






share|improve this answer











$endgroup$












  • $begingroup$
    Regarding the example you provided, I have seen a lot of graphed solutions to the Black Scholes PDE and they indicate a shorter time till expiration comes with a greater price?
    $endgroup$
    – DLB
    Jan 28 at 18:32











  • $begingroup$
    Could you show such a graph, all else equal price should increase with time till expiration.
    $endgroup$
    – Bob Jansen
    Jan 28 at 18:35










  • $begingroup$
    Figure 2 in the link math.unl.edu/~sdunbar1/MathematicalFinance/Lessons/BlackScholes/… shows the value of a put option at different times.
    $endgroup$
    – DLB
    Jan 28 at 18:39











  • $begingroup$
    I hadn't considered that case, updated the answer.
    $endgroup$
    – Bob Jansen
    Jan 28 at 18:54










  • $begingroup$
    Is there a reason we don't see this same case structure when we consider call options?
    $endgroup$
    – DLB
    Jan 28 at 19:04















5












$begingroup$

You've tagged this with 'black-scholes' but you don't have to make the assumptions of the Black-Scholes-Merton model to understand why the option price with time to expiry.



Consider this example: Consider 2 ATM put options on a stock with a time to expiry of one month and one year with some strike price. The maximum pay-out is achieved when the company goes bust, what is more likely, and which option is thus more valuable, that the company goes bust within a month or within a year?



More generally, the price of an ATM or OTM option increases as uncertainty about the price at expiry increases.



More uncertainty allows the stock price to move further away from the strike in the profitable correction which is increases the value, for a call the value can grow without bound. It also can move the other way in which case the option becomes less valuable but never zero or less.



For ITM put options, time can work against the put option holder. The stock has a hard lower bound so the upside for the put option holder is limited but it could make a recovery in which case the option decreases in value.






share|improve this answer











$endgroup$












  • $begingroup$
    Regarding the example you provided, I have seen a lot of graphed solutions to the Black Scholes PDE and they indicate a shorter time till expiration comes with a greater price?
    $endgroup$
    – DLB
    Jan 28 at 18:32











  • $begingroup$
    Could you show such a graph, all else equal price should increase with time till expiration.
    $endgroup$
    – Bob Jansen
    Jan 28 at 18:35










  • $begingroup$
    Figure 2 in the link math.unl.edu/~sdunbar1/MathematicalFinance/Lessons/BlackScholes/… shows the value of a put option at different times.
    $endgroup$
    – DLB
    Jan 28 at 18:39











  • $begingroup$
    I hadn't considered that case, updated the answer.
    $endgroup$
    – Bob Jansen
    Jan 28 at 18:54










  • $begingroup$
    Is there a reason we don't see this same case structure when we consider call options?
    $endgroup$
    – DLB
    Jan 28 at 19:04













5












5








5





$begingroup$

You've tagged this with 'black-scholes' but you don't have to make the assumptions of the Black-Scholes-Merton model to understand why the option price with time to expiry.



Consider this example: Consider 2 ATM put options on a stock with a time to expiry of one month and one year with some strike price. The maximum pay-out is achieved when the company goes bust, what is more likely, and which option is thus more valuable, that the company goes bust within a month or within a year?



More generally, the price of an ATM or OTM option increases as uncertainty about the price at expiry increases.



More uncertainty allows the stock price to move further away from the strike in the profitable correction which is increases the value, for a call the value can grow without bound. It also can move the other way in which case the option becomes less valuable but never zero or less.



For ITM put options, time can work against the put option holder. The stock has a hard lower bound so the upside for the put option holder is limited but it could make a recovery in which case the option decreases in value.






share|improve this answer











$endgroup$



You've tagged this with 'black-scholes' but you don't have to make the assumptions of the Black-Scholes-Merton model to understand why the option price with time to expiry.



Consider this example: Consider 2 ATM put options on a stock with a time to expiry of one month and one year with some strike price. The maximum pay-out is achieved when the company goes bust, what is more likely, and which option is thus more valuable, that the company goes bust within a month or within a year?



More generally, the price of an ATM or OTM option increases as uncertainty about the price at expiry increases.



More uncertainty allows the stock price to move further away from the strike in the profitable correction which is increases the value, for a call the value can grow without bound. It also can move the other way in which case the option becomes less valuable but never zero or less.



For ITM put options, time can work against the put option holder. The stock has a hard lower bound so the upside for the put option holder is limited but it could make a recovery in which case the option decreases in value.







share|improve this answer














share|improve this answer



share|improve this answer








edited yesterday

























answered Jan 28 at 18:08









Bob JansenBob Jansen

3,55752246




3,55752246











  • $begingroup$
    Regarding the example you provided, I have seen a lot of graphed solutions to the Black Scholes PDE and they indicate a shorter time till expiration comes with a greater price?
    $endgroup$
    – DLB
    Jan 28 at 18:32











  • $begingroup$
    Could you show such a graph, all else equal price should increase with time till expiration.
    $endgroup$
    – Bob Jansen
    Jan 28 at 18:35










  • $begingroup$
    Figure 2 in the link math.unl.edu/~sdunbar1/MathematicalFinance/Lessons/BlackScholes/… shows the value of a put option at different times.
    $endgroup$
    – DLB
    Jan 28 at 18:39











  • $begingroup$
    I hadn't considered that case, updated the answer.
    $endgroup$
    – Bob Jansen
    Jan 28 at 18:54










  • $begingroup$
    Is there a reason we don't see this same case structure when we consider call options?
    $endgroup$
    – DLB
    Jan 28 at 19:04
















  • $begingroup$
    Regarding the example you provided, I have seen a lot of graphed solutions to the Black Scholes PDE and they indicate a shorter time till expiration comes with a greater price?
    $endgroup$
    – DLB
    Jan 28 at 18:32











  • $begingroup$
    Could you show such a graph, all else equal price should increase with time till expiration.
    $endgroup$
    – Bob Jansen
    Jan 28 at 18:35










  • $begingroup$
    Figure 2 in the link math.unl.edu/~sdunbar1/MathematicalFinance/Lessons/BlackScholes/… shows the value of a put option at different times.
    $endgroup$
    – DLB
    Jan 28 at 18:39











  • $begingroup$
    I hadn't considered that case, updated the answer.
    $endgroup$
    – Bob Jansen
    Jan 28 at 18:54










  • $begingroup$
    Is there a reason we don't see this same case structure when we consider call options?
    $endgroup$
    – DLB
    Jan 28 at 19:04















$begingroup$
Regarding the example you provided, I have seen a lot of graphed solutions to the Black Scholes PDE and they indicate a shorter time till expiration comes with a greater price?
$endgroup$
– DLB
Jan 28 at 18:32





$begingroup$
Regarding the example you provided, I have seen a lot of graphed solutions to the Black Scholes PDE and they indicate a shorter time till expiration comes with a greater price?
$endgroup$
– DLB
Jan 28 at 18:32













$begingroup$
Could you show such a graph, all else equal price should increase with time till expiration.
$endgroup$
– Bob Jansen
Jan 28 at 18:35




$begingroup$
Could you show such a graph, all else equal price should increase with time till expiration.
$endgroup$
– Bob Jansen
Jan 28 at 18:35












$begingroup$
Figure 2 in the link math.unl.edu/~sdunbar1/MathematicalFinance/Lessons/BlackScholes/… shows the value of a put option at different times.
$endgroup$
– DLB
Jan 28 at 18:39





$begingroup$
Figure 2 in the link math.unl.edu/~sdunbar1/MathematicalFinance/Lessons/BlackScholes/… shows the value of a put option at different times.
$endgroup$
– DLB
Jan 28 at 18:39













$begingroup$
I hadn't considered that case, updated the answer.
$endgroup$
– Bob Jansen
Jan 28 at 18:54




$begingroup$
I hadn't considered that case, updated the answer.
$endgroup$
– Bob Jansen
Jan 28 at 18:54












$begingroup$
Is there a reason we don't see this same case structure when we consider call options?
$endgroup$
– DLB
Jan 28 at 19:04




$begingroup$
Is there a reason we don't see this same case structure when we consider call options?
$endgroup$
– DLB
Jan 28 at 19:04

















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