{"id":754,"date":"2023-08-11T12:58:00","date_gmt":"2023-08-11T12:58:00","guid":{"rendered":"https:\/\/analystprep.com\/study-notes\/?p=754"},"modified":"2026-04-30T17:16:32","modified_gmt":"2026-04-30T17:16:32","slug":"illiquid-assets","status":"publish","type":"post","link":"https:\/\/analystprep.com\/study-notes\/frm\/illiquid-assets\/","title":{"rendered":"Illiquid Assets"},"content":{"rendered":"<p><script type=\"application\/ld+json\">\n{\n  \"@context\": \"https:\/\/schema.org\",\n  \"@type\": \"QAPage\",\n  \"mainEntity\": {\n    \"@type\": \"Question\",\n    \"name\": \"Which of the following is a typical characteristic of an illiquid market?\",\n    \"text\": \"Sophia is a seasoned risk manager at Alpha Investments, a hedge fund focused on emerging and frontier markets. She is evaluating the market of Ostrovia, identified as an illiquid market. Which of the following is a typical characteristic of an illiquid market? A. Immediate order fulfillment at expected prices. B. Narrow bid-ask spreads. C. High price volatility due to sporadic trading. D. High trading volumes with multiple active participants.\",\n    \"answerCount\": 1,\n    \"acceptedAnswer\": {\n      \"@type\": \"Answer\",\n      \"text\": \"The correct answer is C. Illiquid markets are characterized by a limited number of transactions and participants, which can lead to significant price swings even with small order sizes. This results in high price volatility due to sporadic trading. Immediate order fulfillment and narrow bid-ask spreads are typical of liquid markets, while high trading volumes and multiple active participants also indicate liquidity, not illiquidity.\"\n    }\n  }\n}\n<\/script><br \/>\n<script type=\"application\/ld+json\">\n{\n  \"@context\": \"https:\/\/schema.org\",\n  \"@type\": \"ImageObject\",\n  \"url\": \"https:\/\/analystprep.com\/study-notes\/wp-content\/uploads\/2019\/08\/Img_3-1.jpg\",\n  \"caption\": \"Illustration from AnalystPrep study notes\",\n  \"width\": 1590,\n  \"height\": 742,\n  \"copyrightNotice\": \"\u00a9 2024 AnalystPrep\",\n  \"acquireLicensePage\": \"https:\/\/analystprep.com\/license-info\",\n  \"creditText\": \"AnalystPrep Design Team\",\n  \"creator\": {\n    \"@type\": \"Organization\",\n    \"name\": \"AnalystPrep\"\n  }\n}\n<\/script><\/p>\n<p><iframe loading=\"lazy\" src=\"\/\/www.youtube.com\/embed\/sqb5RVaz5YE\" width=\"611\" height=\"343\" allowfullscreen=\"allowfullscreen\"><\/iframe><\/p>\n<p><b>After completing this reading<\/b>,<b> you should be able to<\/b>:<\/p>\n<ul>\n<li style=\"list-style-type: none;\">\n<ul>\n<li>Explain the essential features of illiquid markets.<\/li>\n<li>Explain the effects of market imperfections on illiquidity.<\/li>\n<li>Assess the effects of biases on the reported illiquid asset returns.<\/li>\n<li>Explain the Geltner-Ross-Zisler unsmoothing process and state its properties.<\/li>\n<li>Compare liquidity premiums across as well as within asset categories.<\/li>\n<li>Explain portfolio choice decisions on the incorporation of illiquid assets.<\/li>\n<\/ul>\n<\/li>\n<\/ul>\n<p>Illiquid assets are the assets for which the optimal sale or purchase strategy entails a time-consuming search. One measure of illiquidity is the average time to sell under optimal pricing.<\/p>\n<h2>Characteristics of Illiquid Markets<\/h2>\n<p>All assets are Illiquid. Some assets are, however, more illiquid than others. Infrequent trading, small amounts being traded, and low turnover are some of the manifestations of illiquidity. <br \/>\nFor the public equities class of assets, the average time between transactions is seconds with an annualized turnover of over 100%. For corporate bonds, on the other hand, the average time between transactions is within a day with turnover in the range of 25-35%.<\/p>\n<p>However, for institutional real estate, the average time between transactions ranges anywhere between 8-11 years with an annualized turnover of approximately 7%. This implies that institutional real estate is more illiquid relative to the other two.<\/p>\n<p>The following are the main characteristics of illiquid markets:<\/p>\n<ol style=\"list-style-type: lower-roman;\">\n<li><b>Most asset classes are illiquid<\/b>: One feature of most asset classes is long periods between trades and low turnover except for public equities and fixed income. These include some sub-asset classes of stocks and bonds taking a week or more between transactions and an annual turnover of less than 10%.<\/li>\n<li><b>Illiquid asset markets are significant<\/b>: The public, liquid markets of stocks, and bonds are smaller than the wealth held in illiquid assets. In 2012, for example, the market capitalization of NYSE and NASDAQ was approximately $17 trillion\u00a0relative to $16 trillion held in US residential real estate and $9 trillion held in the institutional real estate market.<\/li>\n<li><b>Investors hold lots of illiquid assets<\/b>: Illiquid markets dominate most investors\u2019 portfolios. For individuals, illiquid assets represent 90% of their total wealth. The share of illiquid assets in institutional portfolios has increased over the years. The average endowment held a portfolio weight of around 5% in the early 1990s, whereas in 2011, it was more than 25%.<\/li>\n<li><b>Liquidity dries up<\/b>: Liquidity tends to dry up during periods of severe market distress. During these times, most liquid markets become illiquid. For instance, during the 2008-2009 financial crisis, the market for commercial papers (usually very liquid) experienced a \u201cbuyers strike\u201d by investors unwilling to trade at any price.<\/li>\n<\/ol>\n<h2>Effects of Market Imperfections<\/h2>\n<p>The following are market imperfections that lead to illiquidity:<\/p>\n<ol style=\"list-style-type: lower-roman;\">\n<li><b>Participation costs<\/b>: Investors incur costs of market participation, e.g., time and energy, to be able to gain the necessary skills to carry out transactions, monitor market movements, and have ready access to a financial exchange.<\/li>\n<li><b>Transaction cost<\/b>: To carry out a transaction, one would have to spend money on paying taxes, commission, the costs of due diligence, and title transfers, among others.<\/li>\n<li><b>Search frictions<\/b>: One needs to find the appropriate buyer and seller for many assets. There is, nevertheless, no centralized market and this may result in long waiting times before one finds a counterparty. For instance, most investors do not have sufficient funds to buy skyscrapers. There are long periods of waiting and, therefore, prices are negotiated. This might mean that the bid-ask spread will be extended due to lack of competition.<\/li>\n<li><b>Asymmetric information<\/b>: In a perfect market, all investors have the same information about the payoff of the risky asset. This, however, is not the case in real-life practice. Different investors have different information either because they have various sources of information or have different abilities to process information from the same source. Investors are reluctant to engage in trade if one of the investors is more knowledgeable than their counterparts. In this case, the concern of liquidity suppliers about trading against better-informed agents influences the supply of liquidity.<\/li>\n<li><b>Imperfect competition<\/b>: In a perfect market setting, all investors are equally competitive and do not affect prices. This is not always the case in practice since some investors are very influential and may have an effect on prices.<\/li>\n<li><b>Demand pressure and inventory risk<\/b>: When an investor wants to sell an amount of stock, there may not necessarily be any buyers. In perfect markets, a market maker will then buy the asset from the investor and will require compensation for the risks that they face due to warehousing the stock.<\/li>\n<\/ol>\n<h2>Effects of Biases on the Reported Illiquid Assets Returns<\/h2>\n<p>Andrew Ang (2014) summarizes many of the critical issues with illiquid asset return data. The following biases contribute to illiquid asset returns being flawed:<\/p>\n<ol style=\"list-style-type: lower-roman;\">\n<li>Survivorship bias.<\/li>\n<li>Selection bias.<\/li>\n<li>Infrequent trading.<\/li>\n<\/ol>\n<h3>i. Survivorship Bias<\/h3>\n<p>Survivorship bias is the tendency to view the excellent performance of some stocks or funds in the market as a representative sample overlooking those that have not performed. Survivorship bias results in the overestimation of the historical performance of a fund or market index. Oftentimes, this leads to investors making misguided investment decisions based on published investment fund return data.<\/p>\n<h3>ii. Selection Bias<\/h3>\n<p>Sampling selection bias occurs when returns on assets are reported only when they are high and overlooked when they are low. This selection bias is witnessed in private equity, where companies are only taken out when stock values are high.<\/p>\n<h3>iii. Infrequent Trading<\/h3>\n<p>Andrew Ang (2014) argued that when one uses the reported returns to compute estimates of risk with infrequent trading, one is likely to underestimate the risks (volatilities, correlations, and betas). For instance, if the returns are sampled quarterly rather than daily, then the information obtained is not an accurate representation of the real returns. Therefore, this misrepresentation leads to the wrong estimation of the risks. By simulation, Andrew Ang (2014) obtained the following graphs:<img loading=\"lazy\" decoding=\"async\" width=\"1590\" height=\"742\" class=\"alignnone size-full wp-image-30683\" style=\"max-width: 100%;\" src=\"https:\/\/analystprep.com\/study-notes\/wp-content\/uploads\/2019\/08\/Img_3-1.jpg\" alt=\"\" srcset=\"https:\/\/analystprep.com\/study-notes\/wp-content\/uploads\/2019\/08\/Img_3-1.jpg 1590w, https:\/\/analystprep.com\/study-notes\/wp-content\/uploads\/2019\/08\/Img_3-1-300x140.jpg 300w, https:\/\/analystprep.com\/study-notes\/wp-content\/uploads\/2019\/08\/Img_3-1-1024x478.jpg 1024w, https:\/\/analystprep.com\/study-notes\/wp-content\/uploads\/2019\/08\/Img_3-1-768x358.jpg 768w, https:\/\/analystprep.com\/study-notes\/wp-content\/uploads\/2019\/08\/Img_3-1-1536x717.jpg 1536w, https:\/\/analystprep.com\/study-notes\/wp-content\/uploads\/2019\/08\/Img_3-1-400x187.jpg 400w\" sizes=\"auto, (max-width: 1590px) 100vw, 1590px\" \/><\/p>\n<h2>Geltner-Ross-Zisler Unsmoothing Process and its Properties<\/h2>\n<p>The risks and performance of illiquid assets are unknown due to the difficulty in measuring these quantities with standard techniques. Usually, the reported returns partially reflect past changes in economic values when reported. However, economic values differ due to infrequent trading. This smoothing effect creates bogus return autocorrelation and invalidates traditional measures of risk and performance, Couts, Gon\u00e7alves, and Rossi (2019).<\/p>\n<p>Andrew Ang (2014) compares unsmoothing to moving from infrequent (e.g., quarterly) sampling to daily sampling. As observed in Figure 1, the quarterly sampling on the left looks a bit smooth, whereas\u00a0the graph on the right\u00a0looks unsmooth. In practice, returns are noisier and, therefore, don&#8217;t always look smooth.<\/p>\n<p>Let\u2019s now look at the Geltner-Ross-Zisler unsmoothing process. Denote the actual return at the end of the period \\(t\\) as \\(\\text r_{\\text t}\\) which is unobservable and the reported return as \\(\\text r_{\\text t}^{*}\\) which is observable. Suppose the observable returns follow:<\/p>\n<p>$$ {\\text r }_{\\text t }^{ * }=\\text C+\\phi {\\text r }_{ \\text t-1 }^{ * }+{ \\varepsilon }_{\\text t }\\quad \\quad (1) $$<\/p>\n<p>Where:<\/p>\n<p>\\(\\phi \\) is the autocorrelation coefficient and is less than 1 in absolute value.<\/p>\n<p>C is a drift term.<\/p>\n<p>\\(\\varepsilon_{\\text t}\\) an error term.<\/p>\n<p>The above equation is an autoregressive process in which the current value is based on the immediately preceding value, the autoregressive process of order 1, AR (1). The equation is used to invert out the actual returns when the observed returns are functions of current and lagged actual returns. If the smoothing process involves only the averaging returns for this period and the prior period, then the observed returns can be filtered to estimate the actual returns, from observed returns, \\(\\text r_{\\text t}^{*}\\) using:<\/p>\n<p>$$ { \\text r }_{\\text t }=\\cfrac { 1 }{ 1-\\phi } {\\text r }_{\\text t }^{ * }-\\cfrac { \\phi }{ 1-\\phi } {\\text r}_{ \\text t-1 }^{ * } \\quad \\quad (2)$$<\/p>\n<p>Equation (2) unsmooths the observed returns. If the assumption on the transfer function is correct, then the observed returns obtained by (2) will have zero autocorrelation. We should note that the variance of the actual returns is higher than that of the observed returns:<\/p>\n<p>$$ \\text {var}\\left( { \\text r }_{\\text t } \\right) =\\cfrac { 1+{ \\phi }^{ 2 } }{ 1-{ \\phi }^{ 2 } } \\text {var}\\left( { \\text r }_{\\text t }^{ * } \\right) \\ge \\text {var}\\left( {\\text r }_{ \\text t }^{ * } \\right) \\quad \\quad (3) $$<\/p>\n<p>Unsmoothed returns at time \\(t\\), \\(\\text r_{\\text t}^{*}\\) is a weighted average of the actual return at time \\(t\\), \\(\\text r_{\\text t}\\) and the lagged unsmoothed return in the previous period, \\(\\text r_{\\text t-1}^{*}\\).<\/p>\n<p>Couts, Gon\u00e7alves, and Rossi (2019), on the other hand, argued that these previous techniques represented a crucial first step in measuring the risks of illiquid assets, but did not fully unsmooth the systematic component of returns. As such, previous techniques understated the importance of risk factors in explaining illiquid asset returns. They provided an adjustment to return unsmoothing techniques to deal with that issue.<\/p>\n<h2>Characteristics of Unsmoothing Process<\/h2>\n<ul>\n<li><b>Unsmoothing only affects risk estimates and not expected returns<\/b>: Estimates of the mean require only the first and last price observation. The first and the last observations are unchanged by infrequent sampling. Unsmoothing, therefore, only changes the volatility estimates.<\/li>\n<li><b>Unsmoothing does not affect uncorrelated observed returns<\/b>: In many cases, reported illiquid asset returns are autocorrelated because illiquid asset values are appraised. The appraisal process induces smoothing because appraisers use both the most recent and comparable sales together with past appraised values. Illiquid asset markets, e.g., real estate, private equity, and timber plantations, among others, are markets where information is not available to all participants, and capital cannot be immediately deployed into new investments. Persistent returns characterize informationally inefficient markets with slow-moving capital.<\/li>\n<li><b>Unsmoothing is an art<\/b>: The Geltner-Ross-Zisler unsmoothing uses the simplest possible autocorrelated process, an AR (1), to describe reported returns. Most illiquid assets have more than first-order lag effects. Real estate, for example, has a well-known fourth-order lag arising from many properties being reappraised only annually. A suitable unsmoothing procedure takes a time-series model; this requires excellent statistical skills. It also requires underlying economic knowledge of the structure of the illiquid market to interpret what is a reasonable lag structure.<\/li>\n<\/ul>\n<h2>Illiquidity Risk Premiums<\/h2>\n<p>The illiquidity risk premium is the additional return demanded by investors for assuming the risk of illiquidity. Illiquidity risk premiums compensate investors for the inability to access capital immediately as well as for the withdrawal of liquidity during the illiquidity crisis. Illiquidity risk premium is a natural feature of private assets, for which investors are generally compensated over the cycle. However, in public asset markets, illiquidity risk investors may not always be compensated. The delay in liquidizing an asset at a reasonable price brings about the risk of illiquidity.<\/p>\n<h3>Harvesting Illiquidity Risk Premiums<\/h3>\n<p>The four ways an asset owner can capture illiquidity premiums, according to Andrew Ang (2014) are:<\/p>\n<ol style=\"list-style-type: lower-roman;\">\n<li>Setting a passive allocation to illiquid asset classes.<\/li>\n<li>Choosing securities within an asset that is more liquid by engaging in liquidity security selection.<\/li>\n<li>Acting as a market maker at the individual security level.<\/li>\n<li>Engaging in dynamic strategies at the aggregate portfolio level.<\/li>\n<\/ol>\n<p>According to economic theory, bearing illiquidity risk should attract a premium, though small.<\/p>\n<h2>Illiquidity Risk Premiums Across Asset Classes<\/h2>\n<h3>Quantifying Illiquidity Premium<\/h3>\n<p>Schroders (2015) identified four key issues with quantifying the illiquidity premium. They include:<\/p>\n<ol style=\"list-style-type: lower-roman;\">\n<li><b>Difficult in isolating the illiquidity premium from other risk premia<\/b>: An asset will contain various risks that deserve to be rewarded. Corporate bonds, for example, are exposed to duration, inflation, and credit risk. There is a challenge in determining which part of the overall return is associated with each risk.<\/li>\n<li><b>Illiquid asset return data is flawed<\/b>: According to Andrew Ang (2014), &#8220;reported illiquid asset returns are not returns.&#8221; Ang claims that people overstate the expected returns and understate the risk of illiquid assets, which he attributes to three fundamental biases: selection bias, survivorship bias, and infrequent sampling; this poses problems for accurately quantifying the illiquidity premium.<\/li>\n<li><b>The risk of illiquid assets is difficult to measure<\/b>: The risk of illiquid assets is often underestimated.<\/li>\n<li><b>Illiquidity is not constant<\/b>: Assets often become harder to sell in times of crisis. Assets that are typically reasonably liquid may see liquidity dry up in the time of crisis, as discussed previously with the example of the commercial papers in 2008-2009.<\/li>\n<\/ol>\n<p>Most market participants assume that there is a reward for bearing illiquidity across asset classes. However, the following are reasons why this is not true:<\/p>\n<ol style=\"list-style-type: lower-roman;\">\n<li><b>Illiquidity biases<\/b>: We have looked at various illiquidity biases, including survivorship bias, infrequent sampling, and selection bias. These biases result in the expected returns of illiquid asset classes being overstated using raw data.<\/li>\n<li><b>Ignores risk<\/b>: Illiquid asset classes contain more than just illiquidity risk. Adjusting for these risks makes illiquid asset classes far less compelling.<\/li>\n<li><b>Lack of \u201cmarket index\u201d<\/b> for illiquid asset classes.<\/li>\n<li><b>Manager selection<\/b>: The dispersion between managers is much higher for investments in hedge funds than for investments in listed equities. Since there is no predefined consensus on the existence of an illiquidity premium, the decision to invest in illiquid asset classes and how successful this is will depend majorly on the ability to select top-performing managers, according to Swensen (2009).<\/li>\n<\/ol>\n<h2>Illiquidity Risk Premiums Within Asset Classes<\/h2>\n<p>Within all the major asset classes, more illiquid securities have higher returns, on average than their more liquid counterparts. We consider a few of these classes in the section that follows.<\/p>\n<h3>US Treasuries<\/h3>\n<p>A well-known liquidity phenomenon in the U.S. Treasury market is the <em>\u201con-the-run\/off-the-run bond spread.\u201d<\/em> Newly auctioned Treasuries (on the run) are more liquid and have higher prices, and hence lower yields, than seasoned Treasuries (off the run). There is a variance in the spread of these two types of bond time, reflecting time-varying liquidity conditions in Treasury markets.<\/p>\n<p>A Treasury bond initially carrying a 20-year maturity is the same as a Treasury note. During the financial crisis, Treasury bonds traded lower than Treasury notes by more than 5% on otherwise identical securities. This goes to show that in one of the world\u2019s most essential and liquid markets, these are substantial illiquidity effects.<\/p>\n<h3>Corporate Bonds<\/h3>\n<p>Within the corporate bond world, there is evidence to suggest that less liquid bonds often have higher returns. Dick-Nielsen, Feldhutter, and Lando (2012) show that the liquidity level premium before the financial crisis was 4 bp for investment-grade and 58 bp for high yield. After the crisis, these premiums went up to 40 to 90 bp for investment-grade securities and 200 basis points for high-yield bonds.<\/p>\n<p>The most significant part of the total liquidity premium in this market comes from the liquidity level premium rather than the liquidity risk premium. This liquidity premium in corporate bond markets varies considerably over time, and there may be significant differences in bull and bear markets.<\/p>\n<h3>Public Equity<\/h3>\n<p>Stocks with low liquidity levels tend to earn higher returns than liquid stocks in equity markets. Illiquidity results in higher returns for private equity, according to Franzoni, Nowak, and Phalippou (2012). However, these premiums have diminished in the recent past, according to Ben-Rephael, Kadan, and Wohl (2015).<\/p>\n<p>Illiquidity risk can help explain the cross-section of equity returns during the crisis in 2008. Some liquid stocks had more significant drawdowns during this period than the more illiquid stocks with lower exposure to illiquidity risks.<\/p>\n<h3>Illiquid Assets<\/h3>\n<p>Franzoni, Nowak, and Phalippou (2012) showed that illiquidity results in higher returns for private equity. This is the same for hedge funds, as demonstrated by Khandani and Lo (2011), and also for real estate as shown by Liu and Qian (2012).<\/p>\n<p>Concerning hedge funds, the risk-adjusted illiquidity risk premiums for some illiquid categories were sometimes as high as 10% per year. This, for example, was the case in the period 1986-2006. Illiquidity premiums for equity market-neutral funds have declined significantly for several reasons, including lower volatility and higher demand for hedge funds over the period 2002-2006.<\/p>\n<h2>Portfolio Choice Decisions on the Incorporation of Illiquid Assets<\/h2>\n<p>Illiquidity risk affects portfolio choice decisions. According to Ang, Papanikolaou, and Westerfield (2013), there are two ways in which this happens:<\/p>\n<ol type=\"i\">\n<li><b>Liquid and illiquid wealth are imperfect substitutes<\/b>: For one to meet their obligations, either in consumption or payout, there is a need to have liquid assets; otherwise, one will not be able to meet these crucial obligations. The availability of liquid assets ensures that an investor does not get to a position where their investment funds are insolvent (or can\u2019t meet their immediate expenses); this results in underinvestment in illiquid assets.<\/li>\n<li><b>Fluctuations in the share of illiquid assets<\/b>: The investor\u2019s ability to fund intermediate obligations depends on his\/her liquid assets, and this leads to changes in the share of illiquid assets. The investor will try to balance between liquid and illiquid assets. In one way or another, they will be in a situation where there are fewer and some other times more illiquid assets relative to the Merton benchmark; this induces a time-varying risk aversion.<\/li>\n<\/ol>\n<p>We should note the following:<\/p>\n<ul>\n<li>Transaction cost models assume that by meeting a particular cost, trade is always possible; this, however, is not true for private equity, real estate, infrastructure, etc. Over a short horizon, there may be no opportunity to find a buyer. Even after finding a buyer, you need to wait for due diligence and complete a legal transfer. Many liquid assets also experienced liquidity freezes during the financial crisis, where no trading was possible because of a lack of counterparties.<\/li>\n<li>If a risky asset can be traded on average every six months,\u00a0 the optimal holding of the illiquid asset contingent on the arrival of the liquidity event is 44%. When the average interval between trades is five years, the optimal allocation is 11%. For ten years, this reduces to 5%. As such, illiquidity risk has a tremendous effect on portfolio choice.<\/li>\n<li>There are no illiquidity \u201carbitrages.\u201d Investors should not load up on illiquid assets because these assets have illiquidity risk and cannot be continuously traded to construct an \u201carbitrage.\u201d<\/li>\n<li>Investors must demand high illiquidity risk premiums. Andrew Ang (2014) came up with a way of calculating the illiquidity premium. He argues that when liquidity events arrive every six months, on average, then an investor should demand an extra 70 basis points and approximately 1% when liquidity comes once a year, on average. When the waiting period is ten years, on average, to exit an investment, one should demand a 6% illiquidity premium.<\/li>\n<\/ul>\n<blockquote>\n<h2>Practice Question<\/h2>\n<p>Sophia is a seasoned risk manager at Alpha Investments, a hedge fund focused on emerging and frontier markets. She&#8217;s currently evaluating the potential risks and rewards of entering the market of Ostrovia, which has been identified by her research team as an illiquid market. Before presenting her analysis to the investment committee, Sophia lists down various characteristics that define an illiquid market, considering how each might influence their trading strategy in Ostrovia.<\/p>\n<p>Which of the following is a typical characteristic of an illiquid market?<\/p>\n<p>A. Immediate order fulfillment at expected prices.<br \/>\nB.Narrow bid-ask spreads.<br \/>\nC. High price volatility due to sporadic trading.<br \/>\nD. High trading volumes with multiple active participants<\/p>\n<p><strong>Solution<\/strong><\/p>\n<p>The correct answer is <strong>C<\/strong>.<\/p>\n<p>Illiquid markets are characterized by a limited number of transactions and participants. This scarcity can lead to significant price swings, even with small order sizes. The reason for this is that the lack of liquidity can cause prices to fluctuate wildly as buyers and sellers struggle to find a match for their orders. This can result in prices moving significantly even on low volume trades. For Alpha Investments, this characteristic of illiquid markets would have a direct impact on their trading strategy. They would need to be cautious of potential large price movements in Ostrovia, as the high price volatility could lead to substantial losses if not properly managed.<\/p>\n<p><b>Option A is incorrect<\/b>. The statement is incorrect because immediate order fulfillment at expected prices is more common in liquid markets. In illiquid markets, due to the limited number of participants and trades, orders might not be filled immediately. Furthermore, when orders are filled, it might be at unexpected prices. This is due to the lack of liquidity, which can cause prices to fluctify wildly as buyers and sellers struggle to find a match for their orders. Therefore, immediate order fulfillment at expected prices is not a typical characteristic of an illiquid market.<\/p>\n<p><b>Option B is incorrect<\/b>. Narrow bid-ask spreads are a feature of liquid markets. In illiquid markets, there&#8217;s usually a wider difference between the buying price (ask) and the selling price (bid). This is because the lack of participants and trades can lead to a mismatch between supply and demand, causing the bid-ask spread to widen. This can result in higher transaction costs for traders, making it more expensive to trade in an illiquid market.<\/p>\n<p><b>Option D is incorrect<\/b>. High trading volumes with multiple active participants are characteristics of a liquid market. Illiquid markets typically have fewer participants and lower trading volumes. This lack of activity can make trading more challenging, as it can be difficult to find a match for buy and sell orders. Therefore, high trading volumes with multiple active participants are not typical characteristics of an illiquid market.<\/p>\n<p><strong>Things to Remember<\/strong><\/p>\n<ul>\n<li><strong>Illiquidity can limit exit opportunities<\/strong>, potentially causing extended holding periods for investments.<\/li>\n<li><strong>Information Asymmetry<\/strong> is more pronounced in illiquid markets, leading to challenges in accurately pricing assets.<\/li>\n<li><strong>Strategic Positioning<\/strong> becomes crucial in illiquid markets as the opportunity to adjust or offload positions might be limited.<\/li>\n<li><strong>Lack of price transparency<\/strong> can create opportunities for informed traders, but also presents additional risks.<\/li>\n<\/ul>\n<\/blockquote>\n","protected":false},"excerpt":{"rendered":"<p>After completing this reading, you should be able to: Explain the essential features of illiquid markets. Explain the effects of market imperfections on illiquidity. Assess the effects of biases on the reported illiquid asset returns. Explain the Geltner-Ross-Zisler unsmoothing process&#8230;<\/p>\n","protected":false},"author":3,"featured_media":1568,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"_acf_changed":false,"footnotes":""},"categories":[6,9,13],"tags":[],"class_list":["post-754","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-frm","category-part-2","category-risk-management-and-investment-management","blog-post","animate"],"acf":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.4 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>Illiquid Assets and Market Characteristics<\/title>\n<meta name=\"description\" content=\"Learn what illiquid assets are, their key features, and how illiquidity and market imperfections affect pricing and investment decisions.\" \/>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, 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